US20220113472A1 - Systems and methods for building, operating and controlling multiple regenerators and transceivers using shared common components - Google Patents

Systems and methods for building, operating and controlling multiple regenerators and transceivers using shared common components Download PDF

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US20220113472A1
US20220113472A1 US17/557,424 US202117557424A US2022113472A1 US 20220113472 A1 US20220113472 A1 US 20220113472A1 US 202117557424 A US202117557424 A US 202117557424A US 2022113472 A1 US2022113472 A1 US 2022113472A1
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signal
pump laser
regenerators
signal conditioners
electromagnetic wave
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US17/557,424
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Alan Eli Willner
Daniel Damaghi
Ohad Harlev
Paul Francis McManamon
Armand VEDADI-COMTE
Dipayan Datta Choudhary
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NKB Properties Management LLC
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Lyteloop Technologies LLC
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Priority to US17/557,424 priority Critical patent/US20220113472A1/en
Assigned to LYTELOOP TECHNOLOGIES, LLC reassignment LYTELOOP TECHNOLOGIES, LLC ASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS). Assignors: MCMANAMON, Paul Francis, CHOUDHARY, DIPAYAN DATTA, WILLNER, ALAN ELI, VEDADI-COMTE, ARMAND, DAMAGHI, Daniel, HARLEV, OHAD
Publication of US20220113472A1 publication Critical patent/US20220113472A1/en
Assigned to NKB PROPERTIES MANAGEMENT, LLC reassignment NKB PROPERTIES MANAGEMENT, LLC ASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS). Assignors: LYTELOOP TECHNOLOGIES, LLC
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    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01SDEVICES USING THE PROCESS OF LIGHT AMPLIFICATION BY STIMULATED EMISSION OF RADIATION [LASER] TO AMPLIFY OR GENERATE LIGHT; DEVICES USING STIMULATED EMISSION OF ELECTROMAGNETIC RADIATION IN WAVE RANGES OTHER THAN OPTICAL
    • H01S3/00Lasers, i.e. devices using stimulated emission of electromagnetic radiation in the infrared, visible or ultraviolet wave range
    • H01S3/10Controlling the intensity, frequency, phase, polarisation or direction of the emitted radiation, e.g. switching, gating, modulating or demodulating
    • H01S3/13Stabilisation of laser output parameters, e.g. frequency or amplitude
    • H01S3/1305Feedback control systems
    • GPHYSICS
    • G02OPTICS
    • G02BOPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B6/00Light guides; Structural details of arrangements comprising light guides and other optical elements, e.g. couplings
    • G02B6/24Coupling light guides
    • G02B6/26Optical coupling means
    • G02B6/28Optical coupling means having data bus means, i.e. plural waveguides interconnected and providing an inherently bidirectional system by mixing and splitting signals
    • G02B6/2804Optical coupling means having data bus means, i.e. plural waveguides interconnected and providing an inherently bidirectional system by mixing and splitting signals forming multipart couplers without wavelength selective elements, e.g. "T" couplers, star couplers
    • G02B6/2861Optical coupling means having data bus means, i.e. plural waveguides interconnected and providing an inherently bidirectional system by mixing and splitting signals forming multipart couplers without wavelength selective elements, e.g. "T" couplers, star couplers using fibre optic delay lines and optical elements associated with them, e.g. for use in signal processing, e.g. filtering
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01SDEVICES USING THE PROCESS OF LIGHT AMPLIFICATION BY STIMULATED EMISSION OF RADIATION [LASER] TO AMPLIFY OR GENERATE LIGHT; DEVICES USING STIMULATED EMISSION OF ELECTROMAGNETIC RADIATION IN WAVE RANGES OTHER THAN OPTICAL
    • H01S3/00Lasers, i.e. devices using stimulated emission of electromagnetic radiation in the infrared, visible or ultraviolet wave range
    • H01S3/05Construction or shape of optical resonators; Accommodation of active medium therein; Shape of active medium
    • H01S3/06Construction or shape of active medium
    • H01S3/063Waveguide lasers, i.e. whereby the dimensions of the waveguide are of the order of the light wavelength
    • H01S3/067Fibre lasers
    • H01S3/06754Fibre amplifiers
    • H01S3/06758Tandem amplifiers
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01SDEVICES USING THE PROCESS OF LIGHT AMPLIFICATION BY STIMULATED EMISSION OF RADIATION [LASER] TO AMPLIFY OR GENERATE LIGHT; DEVICES USING STIMULATED EMISSION OF ELECTROMAGNETIC RADIATION IN WAVE RANGES OTHER THAN OPTICAL
    • H01S3/00Lasers, i.e. devices using stimulated emission of electromagnetic radiation in the infrared, visible or ultraviolet wave range
    • H01S3/09Processes or apparatus for excitation, e.g. pumping
    • H01S3/091Processes or apparatus for excitation, e.g. pumping using optical pumping
    • H01S3/094Processes or apparatus for excitation, e.g. pumping using optical pumping by coherent light
    • H01S3/094003Processes or apparatus for excitation, e.g. pumping using optical pumping by coherent light the pumped medium being a fibre
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01SDEVICES USING THE PROCESS OF LIGHT AMPLIFICATION BY STIMULATED EMISSION OF RADIATION [LASER] TO AMPLIFY OR GENERATE LIGHT; DEVICES USING STIMULATED EMISSION OF ELECTROMAGNETIC RADIATION IN WAVE RANGES OTHER THAN OPTICAL
    • H01S3/00Lasers, i.e. devices using stimulated emission of electromagnetic radiation in the infrared, visible or ultraviolet wave range
    • H01S3/09Processes or apparatus for excitation, e.g. pumping
    • H01S3/091Processes or apparatus for excitation, e.g. pumping using optical pumping
    • H01S3/094Processes or apparatus for excitation, e.g. pumping using optical pumping by coherent light
    • H01S3/094026Processes or apparatus for excitation, e.g. pumping using optical pumping by coherent light for synchronously pumping, e.g. for mode locking
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01SDEVICES USING THE PROCESS OF LIGHT AMPLIFICATION BY STIMULATED EMISSION OF RADIATION [LASER] TO AMPLIFY OR GENERATE LIGHT; DEVICES USING STIMULATED EMISSION OF ELECTROMAGNETIC RADIATION IN WAVE RANGES OTHER THAN OPTICAL
    • H01S3/00Lasers, i.e. devices using stimulated emission of electromagnetic radiation in the infrared, visible or ultraviolet wave range
    • H01S3/09Processes or apparatus for excitation, e.g. pumping
    • H01S3/091Processes or apparatus for excitation, e.g. pumping using optical pumping
    • H01S3/094Processes or apparatus for excitation, e.g. pumping using optical pumping by coherent light
    • H01S3/094061Shared pump, i.e. pump light of a single pump source is used to pump plural gain media in parallel
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01SDEVICES USING THE PROCESS OF LIGHT AMPLIFICATION BY STIMULATED EMISSION OF RADIATION [LASER] TO AMPLIFY OR GENERATE LIGHT; DEVICES USING STIMULATED EMISSION OF ELECTROMAGNETIC RADIATION IN WAVE RANGES OTHER THAN OPTICAL
    • H01S3/00Lasers, i.e. devices using stimulated emission of electromagnetic radiation in the infrared, visible or ultraviolet wave range
    • H01S3/10Controlling the intensity, frequency, phase, polarisation or direction of the emitted radiation, e.g. switching, gating, modulating or demodulating
    • H01S3/10007Controlling the intensity, frequency, phase, polarisation or direction of the emitted radiation, e.g. switching, gating, modulating or demodulating in optical amplifiers
    • H01S3/10015Controlling the intensity, frequency, phase, polarisation or direction of the emitted radiation, e.g. switching, gating, modulating or demodulating in optical amplifiers by monitoring or controlling, e.g. attenuating, the input signal
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01SDEVICES USING THE PROCESS OF LIGHT AMPLIFICATION BY STIMULATED EMISSION OF RADIATION [LASER] TO AMPLIFY OR GENERATE LIGHT; DEVICES USING STIMULATED EMISSION OF ELECTROMAGNETIC RADIATION IN WAVE RANGES OTHER THAN OPTICAL
    • H01S3/00Lasers, i.e. devices using stimulated emission of electromagnetic radiation in the infrared, visible or ultraviolet wave range
    • H01S3/10Controlling the intensity, frequency, phase, polarisation or direction of the emitted radiation, e.g. switching, gating, modulating or demodulating
    • H01S3/13Stabilisation of laser output parameters, e.g. frequency or amplitude
    • H01S3/1301Stabilisation of laser output parameters, e.g. frequency or amplitude in optical amplifiers
    • H01S3/13013Stabilisation of laser output parameters, e.g. frequency or amplitude in optical amplifiers by controlling the optical pumping
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01SDEVICES USING THE PROCESS OF LIGHT AMPLIFICATION BY STIMULATED EMISSION OF RADIATION [LASER] TO AMPLIFY OR GENERATE LIGHT; DEVICES USING STIMULATED EMISSION OF ELECTROMAGNETIC RADIATION IN WAVE RANGES OTHER THAN OPTICAL
    • H01S3/00Lasers, i.e. devices using stimulated emission of electromagnetic radiation in the infrared, visible or ultraviolet wave range
    • H01S3/14Lasers, i.e. devices using stimulated emission of electromagnetic radiation in the infrared, visible or ultraviolet wave range characterised by the material used as the active medium
    • H01S3/16Solid materials
    • H01S3/1601Solid materials characterised by an active (lasing) ion
    • H01S3/1603Solid materials characterised by an active (lasing) ion rare earth
    • H01S3/1608Solid materials characterised by an active (lasing) ion rare earth erbium
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01SDEVICES USING THE PROCESS OF LIGHT AMPLIFICATION BY STIMULATED EMISSION OF RADIATION [LASER] TO AMPLIFY OR GENERATE LIGHT; DEVICES USING STIMULATED EMISSION OF ELECTROMAGNETIC RADIATION IN WAVE RANGES OTHER THAN OPTICAL
    • H01S3/00Lasers, i.e. devices using stimulated emission of electromagnetic radiation in the infrared, visible or ultraviolet wave range
    • H01S3/30Lasers, i.e. devices using stimulated emission of electromagnetic radiation in the infrared, visible or ultraviolet wave range using scattering effects, e.g. stimulated Brillouin or Raman effects
    • H01S3/302Lasers, i.e. devices using stimulated emission of electromagnetic radiation in the infrared, visible or ultraviolet wave range using scattering effects, e.g. stimulated Brillouin or Raman effects in an optical fibre
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04BTRANSMISSION
    • H04B10/00Transmission systems employing electromagnetic waves other than radio-waves, e.g. infrared, visible or ultraviolet light, or employing corpuscular radiation, e.g. quantum communication
    • H04B10/25Arrangements specific to fibre transmission
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04BTRANSMISSION
    • H04B10/00Transmission systems employing electromagnetic waves other than radio-waves, e.g. infrared, visible or ultraviolet light, or employing corpuscular radiation, e.g. quantum communication
    • H04B10/29Repeaters
    • H04B10/291Repeaters in which processing or amplification is carried out without conversion of the main signal from optical form
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01SDEVICES USING THE PROCESS OF LIGHT AMPLIFICATION BY STIMULATED EMISSION OF RADIATION [LASER] TO AMPLIFY OR GENERATE LIGHT; DEVICES USING STIMULATED EMISSION OF ELECTROMAGNETIC RADIATION IN WAVE RANGES OTHER THAN OPTICAL
    • H01S3/00Lasers, i.e. devices using stimulated emission of electromagnetic radiation in the infrared, visible or ultraviolet wave range
    • H01S3/10Controlling the intensity, frequency, phase, polarisation or direction of the emitted radiation, e.g. switching, gating, modulating or demodulating
    • H01S3/10007Controlling the intensity, frequency, phase, polarisation or direction of the emitted radiation, e.g. switching, gating, modulating or demodulating in optical amplifiers
    • H01S3/1001Controlling the intensity, frequency, phase, polarisation or direction of the emitted radiation, e.g. switching, gating, modulating or demodulating in optical amplifiers by controlling the optical pumping

Definitions

  • the present invention relates to systems and methods for building, operating and controlling multiple amplifiers, regenerators and/or transceivers using shared common components.
  • the present invention also relates to using such systems and methods in conjunction with a recirculating loop for storing data in motion or other devices and systems.
  • SSDs solid state drives
  • HDDs hard disk drives
  • SSDs solid state drives
  • Conventional data centers based on those solid-state based storage devices have a variety of drawbacks.
  • data storage using those conventional storage devices consumes a large amount of power and requires expensive maintenance.
  • data storage involving many of those conventional storage devices generates a large amount of heat, necessitating cooling systems, which in turn require additional cost and energy consumption.
  • the throughput at which data can be read from or written to those conventional storage devices is limited by the speed of electronics to, for example, a few Gbit/s.
  • the present invention relates to a system comprising a recirculating loop configured to store an electromagnetic wave (e.g., optical wave) signal, the recirculating loop comprising a transmission medium (e.g., free space, outer space, vacuum, underwater, crystals, nonlinear media, waveguides, optical fibers, to name a few) and a plurality of transceivers configured to introduce the electromagnetic wave signal into the transmission medium and retrieve the electromagnetic wave signal from the transmission medium, and a signal conditioning system comprising a plurality of signal conditioners coupled to the transmission medium, the plurality of signal conditioners configured to amplify or regenerate the electromagnetic wave signal traveling in the transmission medium, one or more pump laser sources, wherein at least one of the one or more pump laser sources is configured to provide a pump laser beam to at least two of the plurality of signal conditioners, and one or more control circuits for controlling the plurality of signal conditioners, wherein at least one of the one or more control circuits is configured to control at least two of the plurality of signal conditioners.
  • the transmission medium comprises a waveguide.
  • the waveguide comprises an optical fiber.
  • the transmission medium comprises free space.
  • the plurality of signal conditioners comprises amplifiers, regenerators, or a combination of amplifiers and regenerators.
  • the amplifiers comprise at least one phase sensitive amplifier.
  • the regenerators comprise at least one phase sensitive parametric amplifier.
  • each of the amplifiers comprises a fiber amplifier doped with a gain medium.
  • the gain medium comprises a fluorescent element.
  • the gain medium comprises a rare-earth element.
  • the gain medium comprises erbium.
  • the system further comprises a coupler configured to combine the pump laser beam with the electromagnetic wave signal and send the combined beam/signal to a corresponding one of the plurality of signal conditioners.
  • the at least one of the one or more control circuits comprises a photodetector configured to measure input and output optical powers of each of the at least two of the plurality of signal conditioners and a processor configured to compare the measured input and output optical powers and adjust an input pump laser power for the each of the at least two of the plurality of signal conditioners.
  • the system further comprises a variable attenuator coupled to the at least one of the one or more pump laser sources and to the at least one of the one or more control circuits, wherein the variable attenuator is configured to control the pump laser beam to be sent to a corresponding one of the plurality of signal conditioners based on the adjusted input pump laser power determined by the processor in the at least one of the one or more control circuits.
  • the regenerators are configured to re-amplify, re-shape, or re-time the electromagnetic wave signal traveling in the transmission medium.
  • the system further comprises one or more clock sources, wherein at least one of the one or more clock sources is configured to provide a clock signal to at least two of the regenerators for re-timing the electromagnetic wave signal.
  • the regenerators comprise crystals or optical fibers.
  • the crystals or the optical fibers are doped with a fluorescent element.
  • the crystals or the optical fibers are doped with a rare-earth element.
  • the crystals or the optical fibers are doped with erbium.
  • the regenerators comprise all-optical regenerators.
  • the regenerators comprise at least one amplifier and at least one absorber.
  • the regenerators comprise at least one amplifier configured to operate in a saturation regime.
  • the regenerators comprise at least one nonlinear filter.
  • the system further comprises one or more laser sources, wherein at least one of the one or more laser sources is configured to provide a laser beam to at least two of the plurality of transceivers.
  • the system further comprises one or more laser sources, wherein each of the plurality of transceivers comprises one or more transmitters and one or more receivers, and at least one of the one or more laser sources is configured to provide a laser beam to at least one of the one or more transmitters in one of the plurality of transceivers and to at least one of the one or more receivers in the other one of the plurality of transceivers.
  • the system further comprises one or more laser sources, wherein each of the plurality of transceivers comprises one or more transmitters and one or more receivers, and at least one of the one or more laser sources is configured to provide a laser beam to at least one of the one or more transmitters in one of the plurality of transceivers and to at least one of the one or more receivers in the same one of the plurality of transceivers.
  • system further comprises a single clock source configured to provide a clock signal to at least two of the plurality of transceivers.
  • the at least one of the one or more laser sources provides the laser beam to a modulator in the at least one of the one or more transmitters in the one of the plurality of transceivers and to a mixer in the at least one of the one or more receivers in the other one of the plurality of transceivers.
  • the at least one of the one or more laser sources provides the laser beam to a modulator in the at least one of the one or more transmitters in the one of the plurality of transceivers and to a mixer in the at least one of the one or more receivers in the same one of the plurality of transceivers.
  • the single clock source provides the clock signal to an integrated circuit (IC) in each of the at least two of the plurality of transceivers.
  • IC integrated circuit
  • the plurality of transceivers is substantially co-located.
  • the plurality of signal conditioners is substantially co-located.
  • the system further comprises one or more multiplexers, wherein at least one of the one or more multiplexers is communicably coupled to at least two of the plurality of signal conditioners.
  • the at least two of the plurality of signal conditioners comprise at least two regenerators.
  • the at least two regenerators comprise at least two phase sensitive parametric amplifiers.
  • the system further comprises one or more demultiplexers, wherein at least one of the one or more demultiplexers is communicably coupled to at least two of the plurality of signal conditioners.
  • the at least two of the plurality of signal conditioners comprise at least two regenerators.
  • the at least two regenerators comprise at least two phase sensitive parametric amplifiers.
  • the present invention further relates to a system comprising a transmission medium, a plurality of transceivers configured to introduce the electromagnetic wave signal into the transmission medium and retrieve the electromagnetic wave signal from the transmission medium, and one or more laser sources, wherein at least one of the one or more laser sources is configured to provide a laser beam to at least two of the plurality of transceivers.
  • each of the plurality of transceivers comprises one or more transmitters and one or more receivers
  • the at least one of the one or more laser sources provides the laser beam to at least one of the one or more transmitters in one of the at least two of the plurality of transceivers and to at least one of the one or more receivers in the other one of the at least two of the plurality of transceivers.
  • each of the plurality of transceivers comprises one or more transmitters and one or more receivers
  • at least one of the one or more laser sources is configured to provide a laser beam to at least one of the one or more transmitters in one of the plurality of transceivers and to at least one of the one or more receivers in the same one of the plurality of transceivers.
  • system further comprises a single clock source configured to provide a clock signal to at least two of the plurality of transceivers.
  • the at least one of the one or more laser sources provides the laser beam to a modulator in the at least one of the one or more transmitters in the one of the at least two of the plurality of transceivers and to a mixer in the at least one of the one or more receivers in the other one of the at least two of the plurality of transceivers.
  • the at least one of the one or more laser sources provides the laser beam to a modulator in the at least one of the one or more transmitters in the one of the plurality of transceivers and to a mixer in the at least one of the one or more receivers in the same one of the plurality of transceivers.
  • the single clock source provides the clock signal to an IC in each of the at least two of the plurality of transceivers.
  • the transmission medium comprises a waveguide.
  • the waveguide comprises an optical fiber.
  • the transmission medium comprises free space.
  • the transmission medium is configured to store an electromagnetic wave signal.
  • the plurality of transceivers is substantially co-located.
  • the present invention also relates to a method for storing an electromagnetic wave signal in a transmission medium, the method comprising amplifying or regenerating, using a plurality of signal conditioners coupled to the transmission medium, an electromagnetic signal traveling in the transmission medium, providing, from one or more pump laser sources, pump laser beams to the plurality of signal conditioners, wherein at least one of the one or more pump laser sources provides a pump laser beam to at least two of the plurality of signal conditioners, and controlling, using one or more control circuits, the plurality of signal conditioners, wherein at least one of the one or more control circuits controls at least two of the plurality of signal conditioners.
  • the transmission medium comprises a waveguide.
  • the waveguide comprises an optical fiber.
  • the transmission medium comprises free space.
  • the plurality of signal conditioners comprises amplifiers, regenerators, or a combination of amplifiers and regenerators.
  • the amplifiers comprise at least one phase sensitive amplifier.
  • the regenerators comprise at least one phase sensitive parametric amplifier.
  • each of the amplifiers comprises a fiber amplifier doped with a gain medium.
  • the gain medium comprises a fluorescent element.
  • the gain medium comprises a rare-earth element.
  • the gain medium comprises erbium.
  • the method further comprises combining, using a coupler, the pump laser beam with the electromagnetic wave signal and sending, using the coupler, the combined beam/signal to a corresponding one of the plurality of signal conditioners.
  • the at least one of the one or more control circuits comprises a photodetector and a processor
  • the controlling step comprises measuring, using the photodetector, input and output optical powers of each of the at least two of the plurality of signal conditioners, and comparing, using the processor, the measured input and output optical powers to adjust an input pump laser power for the each of the at least two of the plurality of signal conditioners.
  • the method further comprises controlling, using a variable attenuator coupled to the at least one of the one or more pump laser sources and to the at least one of the one or more control circuits, the pump laser beam to be sent to a corresponding one of the plurality of signal conditioners based on the adjusted input pump laser power determined by the comparing step.
  • the regenerating step comprises re-amplifying, re-shaping, or re-timing, using the regenerators, the electromagnetic wave signal traveling in the transmission medium.
  • the re-timing step comprises providing, using one or more clock sources, clock signals to the regenerators, wherein at least one of the one or more clock sources provides a clock signal to at least two of the regenerators.
  • the regenerating step is performed all optically in an optical domain.
  • the plurality of signal conditioners is substantially co-located.
  • the amplifying or regenerating step comprises using one or more multiplexers, wherein at least one of the one or more multiplexers is communicably coupled to at least two of the plurality of signal conditioners.
  • the at least two of the plurality of signal conditioners comprise at least two regenerators.
  • the at least two regenerators comprise at least two phase sensitive parametric amplifiers.
  • the amplifying or regenerating step comprises using one or more demultiplexers, wherein at least one of the one or more demultiplexers is communicably coupled to at least two of the plurality of signal conditioners.
  • the at least two of the plurality of signal conditioners comprise at least two regenerators.
  • the at least two regenerators comprise at least two phase sensitive parametric amplifiers.
  • the present invention also relates to a method of using a plurality of transceivers connected to a transmission medium, the method comprising inputting, using the plurality of transceivers, an electromagnetic wave signal into the transmission medium, outputting, using the plurality of transceivers, the electromagnetic wave signal from the transmission medium, and providing, from a single laser source, a laser beam to at least two of the plurality of transceivers.
  • each of the plurality of transceivers comprises one or more transmitters and one or more receivers
  • the single laser source provides the laser beam to at least one of the one or more transmitters in one of the at least two of the plurality of transceivers and to at least one of the one or more receivers in the other one of the at least two of the plurality of transceivers.
  • each of the plurality of transceivers comprises one or more transmitters and one or more receivers
  • the method further comprising the step of providing, from the single laser source, a laser beam to at least one of the one or more transmitters in one of the plurality of transceivers and to at least one of the one or more receivers in the same one of the plurality of transceivers.
  • the method further comprises providing, from a single clock source, a clock signal to at least two of the one or more transceivers.
  • the single laser source provides the laser beam to a modulator in the at least one of the one or more transmitters in the one of the at least two of the plurality of transceivers and to a mixer in the at least one of the one or more receivers in the other one of the at least two of the plurality of transceivers.
  • the single laser source provides the laser beam to a modulator in the at least one of the one or more transmitters in the one of the plurality of transceivers and to a mixer in the at least one of the one or more receivers in the same one of the plurality of transceivers.
  • the single clock source provides the clock signal to an IC in each of the at least two of the plurality of transceivers.
  • the transmission medium comprises a waveguide.
  • the waveguide comprises an optical fiber.
  • the transmission medium comprises free space.
  • the transmission medium is configured to store an electromagnetic wave signal.
  • the plurality of transceivers is substantially co-located.
  • FIG. 1 is a schematic diagram of multiple amplifiers sharing components in accordance with an exemplary embodiment of the present invention.
  • FIG. 2 is a schematic diagram of multiple regenerators sharing components n accordance with an exemplary embodiment of the present invention.
  • FIG. 3 is a schematic diagram of multiple transceivers sharing components in accordance with an exemplary embodiment of the present invention.
  • Information or any kind of data can be stored as electromagnetic waves (e.g., coherent (i.e., laser) or non-coherent optical beams, radio frequency (RF) signals, and other types of electromagnetic wave signals, to name a few), which can be transmitted and/or reflected between structures or within structures in various transmission media (e.g., free space, outer space, vacuum, underwater, crystals, nonlinear media, waveguides, optical fibers, to name a few).
  • a recirculating loop may be used to store “data in motion” by keeping electromagnetic wave signals, which may carry data, in a continuous motion, transmitted and/or reflected between or within structures and regenerated (e.g., by signal amplification) as needed.
  • the recirculating loop may comprise a transmission medium (e.g., free space, waveguide, optical fiber, cavity under a vacuum condition, to name a few) through which an electromagnetic wave signal can travel, and one or more transceivers configured to introduce the electromagnetic wave signal into the transmission medium and retrieve the electromagnetic wave signal from the transmission medium.
  • the recirculating loop may be formed by satellites and/or other vessels that reflect or otherwise retransmit the data in free space.
  • the recirculating loop may comprise a waveguide, such as an optical fiber.
  • Electromagnetic radiation or electromagnetic beam as used herein may include any kind of electromagnetic signal, including a laser beam or signal, a maser beam or signal, an optical beam or signal, or any type of wired or wireless signal, including acoustic waves, radio waves, IR radiation, UV radiation, microwave-band transmission, or any combination of more than one of the foregoing.
  • systems for storing electromagnetic wave signals in a recirculating loop may be configured to extinguish or “turn off” the electromagnetic wave signals stored therein.
  • the electromagnetic wave signals When the electromagnetic wave signals are extinguished, data stored therein is definitively and instantly lost and cannot be recovered, unlike the data erased from a solid-state memory.
  • signal conditioners e.g., amplifiers, regenerators, a combination of amplifiers and regenerators, to name a few
  • transceivers using shared common components to achieve a more efficient and/or cost-effective design.
  • Such systems and methods may be used in conjunction with a recirculating loop for storing data in motion, or with other devices or systems of the similar architecture.
  • multiple signal conditioners such as amplifiers, regenerators, or a combination of amplifiers and regenerators, may be placed along the path of an electromagnetic wave signal to restore the passing electromagnetic wave signal to its original or previous state and/or to compensate for any degradation.
  • An amplifier may be any device configured to amplify an electromagnetic wave signal.
  • an amplifier may comprise crystals or optical fibers.
  • the crystals and optical fibers may be doped with a gain medium comprising, for example, a fluorescent element or a rare-earth element, such as erbium.
  • the optical fiber used in the amplifier may include additional devices at the input to inject the electromagnetic wave signal into the optical fiber, and other devices at the output to restore the electromagnetic wave beam to its original shape and size.
  • Each amplifier may require many, various components.
  • an amplifier may be used in conjunction with a pump laser source, which is configured to provide a pump laser beam to the amplifier.
  • an amplifier may be used in conjunction with a control circuit, which is configured to control the operation of the amplifier.
  • Amplifiers such as erbium-doped fiber amplifiers (EDFAs) are typically used to periodically amplify electromagnetic wave signals in an optical fiber communication link that extends over a long distance. Such periodic gains provided by the amplifiers along the fiber communication link offset the signal power loss due to the transmission optical fiber.
  • EDFAs erbium-doped fiber amplifiers
  • amplifiers are placed apart from each other (e.g., placed at intervals of 50 to 100 kilometers) such that each amplifier is likely isolated from the other amplifiers and cannot readily “share” components with the other amplifiers.
  • Each amplifier comprises many components.
  • each EDFA used in such a conventional system may comprise erbium doped fiber, pump laser source, optical isolator, optical coupler and control circuit.
  • a system such as a system for storing data in motion using a recirculating loop
  • multiple amplifiers can be placed at the same location, or substantially co-located, i.e., located in the vicinity of each other (e.g., near or substantially adjacent to each other, physically located in the same room or space, etc.).
  • multiple amplifiers such as EDFAs to share one or more common components in order to achieve a more efficient and cost-effective design.
  • systems and methods for building, operating and/or controlling multiple signal conditioners e.g., amplifiers, regenerators, a combination of amplifiers and regenerators, to name a few
  • transceivers using shared common components may also be used in conjunction with other types of architectures wherein transmission equipment are placed at the same location, or substantially co-located, i.e., located in the vicinity of each other (e.g., near or substantially adjacent to each other, physically located in the same room or space, etc.).
  • Examples of these types of architectures may include, but are not limited to, data centers where information may be sent and received within the same facility, and sensing equipment, such as RADAR and LIDAR, which send and receive data to and from the same location.
  • FIG. 1 is a schematic diagram of a system 100 comprising at least two substantially co-located EDFAs sharing common components, such as a pump laser source 103 and/or a control circuit 104 , in accordance with an exemplary embodiment of the present invention.
  • the substantially co-located EDFAs may be coupled to each other by a transmission medium, such as a transmission fiber 123 .
  • FIG. 1 shows an electromagnetic wave signal 101 entering a first EDFA 121 , 122 .
  • the amplified signal then passes through a transmission fiber 123 .
  • the signal then enters a second EDFA 124 , 125 and exits the second EDFA as an amplified signal 102 .
  • a single pump laser source 103 having sufficient output power may be used to provide a pump laser beam to two or more multiple EDFAs.
  • the output power of the pump laser source 103 may be split and sent to variable attenuators 111 , 112 , each of which may be coupled to the corresponding one of the multiple EDFAs.
  • the variable attenuator 111 , 112 may be configured to control the specific pump laser power needed for the corresponding EDFA.
  • the pump laser beam may then be sent from the variable attenuators 111 , 112 to erbium-doped fibers 122 , 125 through the corresponding couplers 121 , 124 .
  • Each of the couplers 121 , 124 may be configured to combine the pump laser beam from the pump laser source 103 (via variable attenuators 111 , 112 ) with the electromagnetic wave signal and send the combined pump laser beam and electromagnetic wave signal to the corresponding erbium-doped fiber 122 , 125 to achieve amplification of the electromagnetic wave signal.
  • At least two of the multiple EDFAs may be used in conjunction with a shared control circuit 104 , which may be configured to control the operation of the EDFAs, such as the gain of the amplifiers.
  • a shared control circuit 104 may be configured to control the operation of the EDFAs, such as the gain of the amplifiers.
  • the input power to and output power from the erbium-doped fiber 122 , 125 may be measured by using, for example, a photodetector in the control circuit 104 .
  • the measured input and output powers may then be compared by using, for example, a processor comprising electronic circuitry in the control circuit 104 to determine the amplifier characteristics, such as gain.
  • the pump laser power input to the coupler 121 , 124 can be adjusted accordingly.
  • this adjustment of the pump laser power input may be performed by the pump laser source 103 and/or variable attenuator 111 , 112 based on control signals from the control circuit 104 , as shown in FIG. 1 .
  • the shared control circuit 104 may be much faster than the changes that might occur to the amplifier gain. As such, by using many couplers and taking optical/electronic measurements sequentially from different multiple erbium-doped fibers, many EDFAs can share a single control circuit.
  • the pump laser source 103 and the control circuit 104 may account for a large fraction of the cost of the multiple EDFAs in the system 100 . As such, sharing of the pump laser source and/or the control circuit by multiple EDFAs can provide the benefit of efficiency and cost-effectiveness.
  • phase sensitive amplifiers may be configured such that substantially co-located multiple PSAs can share one or more common components, such as a pump laser source, control circuit, and/or clock signal.
  • regenerators may be used for communication systems involving a distance of greater than 100 kilometers.
  • a full signal regeneration which is typically called a “3R” process, involves signal retiming, reshaping, and reamplification (or amplification) of the electromagnetic wave signal.
  • a regenerator may be configured to conduct full electromagnetic wave signal regeneration.
  • a regenerator may be configured to restore only some aspects of the electromagnetic wave signal by re-timing and/or re-shaping and/or re-amplification of the electromagnetic wave signal in part.
  • the regenerator may also be configured to implement error correction to restore lost information or correct errors introduced into the data in motion.
  • the regenerator may be used in conjunction with Wavelength Division Multiplexing (WDM), which enables the regenerator to improve the signal quality on different wavelength channels.
  • WDM Wavelength Division Multiplexing
  • regenerator may be an all-optical or optoelectronic regenerator, wherein the all-optical regenerator is configured to regenerate the electromagnetic wave signal all optically in the optical domain, while the optoelectronic regenerator is configured to convert the electromagnetic wave signal to a corresponding electrical signal in the electrical domain, regenerate the converted electrical signal electrically and convert the regenerated electrical signal to a corresponding electromagnetic wave signal in the optical domain.
  • the regenerator may comprise at least one amplifier and at least one absorber.
  • the regenerator may comprise at least one amplifier configured to operate in a saturation regime.
  • the regenerator may comprise a nonlinear filter configured to provide gain stabilization and/or reduce noise in the electromagnetic wave signal.
  • the regenerator may comprise crystals or optical fibers.
  • the regenerator may comprise crystals or optical fibers doped by a fluorescent element or a rare-earth element, such as erbium.
  • the optical fiber used in the regenerator may comprise additional devices at the input to inject the electromagnetic wave signal into the optical fiber, and other devices at the output to restore the electromagnetic wave beam to its original shape and size.
  • the regenerator may comprise at least one phase sensitive parametric amplifier.
  • regenerators In a system (e.g., a system for storing data in motion using a recirculating loop) where multiple regenerators can be substantially co-located, it is possible for multiple regenerators to share one or more common components in order to achieve a more efficient and cost-effective design.
  • FIG. 2 is a schematic diagram of a system 200 comprising at least two substantially co-located regenerators 232 , 235 sharing common components, such as a pump laser source 203 , a control circuit 204 , and/or a clock source 205 , in accordance with an exemplary embodiment of the present invention.
  • the substantially co-located regenerators 232 , 235 may be coupled to each other by a transmission medium, such as a transmission fiber 233 .
  • FIG. 2 shows an electromagnetic wave signal 201 entering a first regenerator 232 through the corresponding coupler 231 . The regenerated signal then passes through a transmission fiber 233 . The signal then enters a second regenerator 235 through the corresponding coupler 234 and exits the second regenerator as a regenerated signal 202 .
  • a single pump laser source 203 having sufficient output power may be used to provide a pump laser beam to two or more multiple regenerators 232 , 235 .
  • the output power of the pump laser source 203 may be split and sent to variable attenuators 211 , 212 , each of which may be coupled to the corresponding one of the multiple regenerators 232 , 235 .
  • the variable attenuator 211 , 212 may be configured to control the specific pump laser power needed for the corresponding regenerator.
  • the pump laser beam may then be sent from the variable attenuators 211 , 212 to the regenerators 232 , 235 through the corresponding couplers 231 , 234 .
  • Each of the couplers 231 , 234 may be configured to combine the pump laser beam from the pump laser source 203 (via variable attenuators 211 , 212 ) with the electromagnetic wave signal and to send the combined pump laser beam and electromagnetic wave signal to the corresponding regenerator 232 , 235 to achieve full or partial regeneration of the electromagnetic wave signal.
  • At least two of the multiple regenerators 232 , 235 may be used in conjunction with a shared control circuit 204 , which may be configured to control the operation of the regenerators, such as the gain of the regenerators.
  • the input power to and output power from the regenerator 232 , 235 may be measured by using, for example, a photodetector in the control circuit 204 .
  • the measured input and output powers may then be compared by using, for example, a processor comprising electronic circuitry in the control circuit 204 to determine the regenerator characteristics, such as gain.
  • the pump laser power input to the coupler 231 , 234 can be adjusted accordingly.
  • this adjustment of the pump laser power input may be performed by the pump laser source 203 and/or variable attenuator 211 , 212 based on control signals from the control circuit 204 , as shown in FIG. 2 .
  • the shared control circuit 204 may be much faster than the changes that might occur to the regenerator gain. As such, by using many couplers and taking optical/electronic measurements sequentially from different multiple regenerators, many regenerators can share a single control circuit.
  • At least two of the substantially co-located multiple regenerators 232 , 235 may use a shared clock source 205 , which may be configured to provide a clock signal to each of at least two of the multiple regenerators 232 , 235 for re-timing the electromagnetic wave signal.
  • the system 200 may further comprise one or more multiplexers (not shown in FIG. 2 ), wherein at least one of the one or more multiplexers is communicably coupled to and shared by the two substantially co-located regenerators 232 , 235 . Additionally or alternatively, the system 200 may further comprise one or more demultiplexers (not shown in FIG. 2 ), wherein at least one of the one or more demultiplexers is communicably coupled to and shared by the two substantially co-located regenerators 232 , 235 . In embodiments, the two regenerators 232 , 235 sharing at least one of the one or more multiplexers and/or at least one of the one or more demultiplexers comprise phase sensitive parametric amplifiers.
  • the pump laser source 203 , the control circuit 204 , the clock source 205 and/or multiplexers/demultiplexers may account for a large fraction of the cost of the multiple regenerators in the system 200 .
  • sharing of one or more common components, such as pump laser source, control circuit, clock source and/or multiplexers/demultiplexers, by multiple regenerators can provide the benefit of efficiency, cost-effectiveness and overall reduction in power consumption of the regenerators.
  • Transceivers may be used to transmit and receive electromagnetic wave signals through a transmission medium, such as free space, waveguide, optical fiber, to name a few.
  • a transceiver may comprise one or more transmitters and one or more receivers.
  • a transceiver may comprise many components, such as input/output interfaces, modulators, mixers, amplifiers, active optic cables, and/or integrated circuits (e.g., application specific integrated circuit (ASIC)) comprising, for example, a digital signal processor (DSP), an optical transport network (OTN) framer/deframer, an analog-to-digital converter (ADC), and/or a digital-to-analog converter. (DAC).
  • DSP digital signal processor
  • OTN optical transport network
  • ADC analog-to-digital converter
  • DAC digital-to-analog converter
  • a system e.g., a system for storing data in motion using a recirculating loop
  • multiple transceivers can be substantially co-located
  • FIG. 3 is a schematic diagram of a system 300 comprising at least two substantially co-located transceivers 305 , 306 sharing common components, such as a laser source 303 and/or a clock source 304 , in accordance with an exemplary embodiment of the present invention.
  • the substantially co-located transceivers 305 , 306 may be coupled to each other by a transmission medium, such as a transmission fiber 307 , as shown in FIG. 3 .
  • FIG. 3 is a schematic diagram of a system 300 comprising at least two substantially co-located transceivers 305 , 306 sharing common components, such as a laser source 303 and/or a clock source 304 , in accordance with an exemplary embodiment of the present invention.
  • the substantially co-located transceivers 305 , 306 may be coupled to each other by a transmission medium, such as a transmission fiber 307 , as shown in FIG. 3 .
  • FIG. 3 shows an electromagnetic wave signal 301 traveling in to or out of a first transceiver 305 through a first input/output interface 311 , and the corresponding electromagnetic wave signal 302 traveling in to or out of a second transceiver 306 through a second input/output interface 318 .
  • the electromagnetic wave signal 301 enters the first transceiver 305 through the first input/output interface 311 and then passes through a first integrated circuit (IC) 312 , a first modulator/mixer 313 and a first amplifier 314 of the first transceiver 305 .
  • IC integrated circuit
  • the signal is then transmitted through the transmission fiber 307 , and then passes through a second amplifier 315 , a second modulator/mixer 316 and a second integrated circuit 317 of the second transceiver 306 .
  • the second transceiver 306 outputs the corresponding electromagnetic wave signal 302 through the second input/output interface 318 .
  • the electromagnetic wave signal 302 may travel in the reverse direction such that the first transceiver 305 outputs the corresponding electromagnetic wave signal 301 through the first input/output interface 311 .
  • At least two of the substantially co-located multiple transceivers 305 , 306 may use a shared laser source 303 .
  • the laser source 303 may be configured to provide a laser beam to the first transceiver 305 and to the second transceiver 306 .
  • the laser source 303 may provide a laser beam to at least one of the one or more transmitters in the first transceiver 305 and to at least one of one or more receivers in the second transceiver 306 .
  • the laser source 303 may provide a laser beam to a modulator 313 in at least one of the one or more transmitters in the first transceiver 305 and to a mixer 316 in at least one of one or more receivers in the second transceiver 306 , as shown in FIG. 3 . It should be noted that the pairs of transceivers that are sharing the laser sources will often transmit and receive light on the same wavelength.
  • the laser source 303 may be configured to provide a laser beam to at least one of the one or more transmitters in at least one of the multiple transceivers 305 , 306 and to at least one of the one or more receivers in the same one of the multiple transceivers 305 , 306 .
  • the laser source 303 may be configured to provide a laser beam to a modulator in at least one of the one or more transmitters in at least one of the multiple transceivers 305 , 306 and to a mixer in at least one of the one or more receivers in the same one of the multiple transceivers 305 , 306 .
  • At least two of the substantially co-located multiple transceivers may use a shared clock source, which may be configured to provide a clock signal to each of at least two of the multiple transceivers.
  • a clock source 304 may be configured to provide a clock signal to the first IC 312 in the first transceiver 305 and to the second IC 317 in the second transceiver 306 .
  • electromagnetic waves include acoustic waves. Accordingly, storage in motion of information or any kind of data can also be implemented using acoustic (i.e., sound) waves.
  • acoustic (i.e., sound) waves Representative values for the speed of sound include about 1,500 m/sec in water, about 330 m/sec in air, and about 6,000 m/sec in steel. (There are a range of velocities for each case.)
  • sound waves can be in the region of tens of MHz. For example, some medical ultrasound devices operate in the regions of tens of MHz. Usually, lower frequency sound also has less attenuation over distance.
  • a benefit of using acoustic waves for storage in motion is the relatively slower speed of sound.
  • the wave signal carrying information or any kind of data in motion is an acoustic wave
  • the much lower speed of sound (as compared to the speed of light) enables one to store a greater amount of data in motion in a cavity without requiring a higher data rate at which the data is introduced into the cavity.
  • Acoustic waves require some medium in order to propagate.
  • Information or any kind of data can be transmitted and/or reflected between structures or within structures using acoustic waves in various transmission media (e.g., air and steel, to name a few).
  • Embodiments of storage in motion using acoustic waves could be constructed using such media.
  • railroad tracks could be a long-distance medium.
  • Acoustic waves can be generated using various sources of vibration, including crystal transducers and speakers, to name a few.
  • Microphones detect acoustic waves.

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Abstract

A system comprising a recirculating loop configured to store an electromagnetic wave signal, the recirculating loop comprising a transmission medium and a plurality of transceivers configured to introduce the electromagnetic wave signal into the transmission medium and retrieve the electromagnetic wave signal from the transmission medium, and a signal conditioning system comprising a plurality of signal conditioners coupled to the transmission medium, the plurality of signal conditioners configured to amplify or regenerate the electromagnetic wave signal traveling in the transmission medium, one or more pump laser sources, wherein at least one of the one or more pump laser sources is configured to provide a pump laser beam to at least two of the plurality of signal conditioners, and one or more control circuits for controlling the plurality of signal conditioners, wherein at least one of the one or more control circuits is configured to control and monitor at least two of the plurality of signal conditioners, is disclosed.

Description

    CROSS-REFERENCE TO RELATED APPLICATIONS
  • The present U.S. non-provisional patent application is a continuation application and claims the benefit of copending U.S. patent application Ser. No. 16/672,221, filed on Nov. 1, 2019, which claims the benefit of and priority to U.S. Provisional Patent Application No. 62/755,631, filed Nov. 5, 2018, the entire contents of each of which are incorporated herein by reference.
  • FIELD OF INVENTION
  • The present invention relates to systems and methods for building, operating and controlling multiple amplifiers, regenerators and/or transceivers using shared common components. The present invention also relates to using such systems and methods in conjunction with a recirculating loop for storing data in motion or other devices and systems.
  • BACKGROUND OF THE INVENTION
  • The expansion of data centers, broadband communications and computationally intensive signal processing is driving the demand for high capacity data storage that potentially consumes less power and has higher security. Modern data centers also often require rapid access to the same data stored on a common drive to perform, for example, high performance computing (HPC). In addition, there is an increasing interest among many actors within the information technology (IT) storage industry (e.g., end customers, data centers, in system programmers (ISP), in circuit programmers (ICP)) in being able to erase sensitive data (e.g., government data, military data) definitively and completely in an immediate manner.
  • Currently, solid state drives (SSDs), such as non-volatile NAND flash memory based drives, and hard disk drives (HDDs) are examples of storage devices used to store data in data centers. Conventional data centers based on those solid-state based storage devices have a variety of drawbacks. For example, data storage using those conventional storage devices consumes a large amount of power and requires expensive maintenance. In addition, data storage involving many of those conventional storage devices generates a large amount of heat, necessitating cooling systems, which in turn require additional cost and energy consumption. Moreover, the throughput at which data can be read from or written to those conventional storage devices is limited by the speed of electronics to, for example, a few Gbit/s. Additionally, when data is erased from a conventional non-volatile solid-state memory, an imprint of the erased data typically remains and one could recover the erased data with proper skills and technology. Furthermore, to scale storage in the data center using those conventional storage devices, it is necessary to either buy more of the storage devices or replace the current storage devices with better performing ones. Accordingly, constructing and upgrading data centers using the conventional storage devices is a costly and time-consuming process.
  • There is, therefore, a need for a data storage apparatus and method that overcomes one or more of the above and other deficiencies of data storage using conventional storage devices. In addition, there is a need for a more cost-effective and efficient design for building, operating and controlling multiple amplifiers, regenerators and/or transceivers that may be used in conjunction with data storage devices or systems, or in conjunction with other devices or systems.
  • SUMMARY OF THE INVENTION
  • It has now been found that the above and related objects of the present invention are obtained in the form of several related aspects, including systems and methods for building, operating and controlling multiple amplifiers, regenerators and/or transceivers using shared common components.
  • More particularly, the present invention relates to a system comprising a recirculating loop configured to store an electromagnetic wave (e.g., optical wave) signal, the recirculating loop comprising a transmission medium (e.g., free space, outer space, vacuum, underwater, crystals, nonlinear media, waveguides, optical fibers, to name a few) and a plurality of transceivers configured to introduce the electromagnetic wave signal into the transmission medium and retrieve the electromagnetic wave signal from the transmission medium, and a signal conditioning system comprising a plurality of signal conditioners coupled to the transmission medium, the plurality of signal conditioners configured to amplify or regenerate the electromagnetic wave signal traveling in the transmission medium, one or more pump laser sources, wherein at least one of the one or more pump laser sources is configured to provide a pump laser beam to at least two of the plurality of signal conditioners, and one or more control circuits for controlling the plurality of signal conditioners, wherein at least one of the one or more control circuits is configured to control at least two of the plurality of signal conditioners.
  • In at least one embodiment, the transmission medium comprises a waveguide.
  • In at least one embodiment, the waveguide comprises an optical fiber.
  • In at least one embodiment, the transmission medium comprises free space.
  • In at least one embodiment, the plurality of signal conditioners comprises amplifiers, regenerators, or a combination of amplifiers and regenerators.
  • In at least one embodiment, the amplifiers comprise at least one phase sensitive amplifier.
  • In at least one embodiment, the regenerators comprise at least one phase sensitive parametric amplifier.
  • In at least one embodiment, each of the amplifiers comprises a fiber amplifier doped with a gain medium.
  • In at least one embodiment, the gain medium comprises a fluorescent element.
  • In at least one embodiment, the gain medium comprises a rare-earth element.
  • In at least one embodiment, the gain medium comprises erbium.
  • In at least one embodiment, the system further comprises a coupler configured to combine the pump laser beam with the electromagnetic wave signal and send the combined beam/signal to a corresponding one of the plurality of signal conditioners.
  • In at least one embodiment, the at least one of the one or more control circuits comprises a photodetector configured to measure input and output optical powers of each of the at least two of the plurality of signal conditioners and a processor configured to compare the measured input and output optical powers and adjust an input pump laser power for the each of the at least two of the plurality of signal conditioners.
  • In at least one embodiment, the system further comprises a variable attenuator coupled to the at least one of the one or more pump laser sources and to the at least one of the one or more control circuits, wherein the variable attenuator is configured to control the pump laser beam to be sent to a corresponding one of the plurality of signal conditioners based on the adjusted input pump laser power determined by the processor in the at least one of the one or more control circuits.
  • In at least one embodiment, the regenerators are configured to re-amplify, re-shape, or re-time the electromagnetic wave signal traveling in the transmission medium.
  • In at least one embodiment, the system further comprises one or more clock sources, wherein at least one of the one or more clock sources is configured to provide a clock signal to at least two of the regenerators for re-timing the electromagnetic wave signal.
  • In at least one embodiment, the regenerators comprise crystals or optical fibers.
  • In at least one embodiment, the crystals or the optical fibers are doped with a fluorescent element.
  • In at least one embodiment, the crystals or the optical fibers are doped with a rare-earth element.
  • In at least one embodiment, the crystals or the optical fibers are doped with erbium.
  • In at least one embodiment, the regenerators comprise all-optical regenerators.
  • In at least one embodiment, the regenerators comprise at least one amplifier and at least one absorber.
  • In at least one embodiment, the regenerators comprise at least one amplifier configured to operate in a saturation regime.
  • In at least one embodiment, the regenerators comprise at least one nonlinear filter.
  • In at least one embodiment, the system further comprises one or more laser sources, wherein at least one of the one or more laser sources is configured to provide a laser beam to at least two of the plurality of transceivers.
  • In at least one embodiment, the system further comprises one or more laser sources, wherein each of the plurality of transceivers comprises one or more transmitters and one or more receivers, and at least one of the one or more laser sources is configured to provide a laser beam to at least one of the one or more transmitters in one of the plurality of transceivers and to at least one of the one or more receivers in the other one of the plurality of transceivers.
  • In at least one embodiment, the system further comprises one or more laser sources, wherein each of the plurality of transceivers comprises one or more transmitters and one or more receivers, and at least one of the one or more laser sources is configured to provide a laser beam to at least one of the one or more transmitters in one of the plurality of transceivers and to at least one of the one or more receivers in the same one of the plurality of transceivers.
  • In at least one embodiment, the system further comprises a single clock source configured to provide a clock signal to at least two of the plurality of transceivers.
  • In at least one embodiment, the at least one of the one or more laser sources provides the laser beam to a modulator in the at least one of the one or more transmitters in the one of the plurality of transceivers and to a mixer in the at least one of the one or more receivers in the other one of the plurality of transceivers.
  • In at least one embodiment, the at least one of the one or more laser sources provides the laser beam to a modulator in the at least one of the one or more transmitters in the one of the plurality of transceivers and to a mixer in the at least one of the one or more receivers in the same one of the plurality of transceivers.
  • In at least one embodiment, the single clock source provides the clock signal to an integrated circuit (IC) in each of the at least two of the plurality of transceivers.
  • In at least one embodiment, the plurality of transceivers is substantially co-located.
  • In at least one embodiment, the plurality of signal conditioners is substantially co-located.
  • In at least one embodiment, the system further comprises one or more multiplexers, wherein at least one of the one or more multiplexers is communicably coupled to at least two of the plurality of signal conditioners.
  • In at least one embodiment, the at least two of the plurality of signal conditioners comprise at least two regenerators.
  • In at least one embodiment, the at least two regenerators comprise at least two phase sensitive parametric amplifiers.
  • In at least one embodiment, the system further comprises one or more demultiplexers, wherein at least one of the one or more demultiplexers is communicably coupled to at least two of the plurality of signal conditioners.
  • In at least one embodiment, the at least two of the plurality of signal conditioners comprise at least two regenerators.
  • In at least one embodiment, the at least two regenerators comprise at least two phase sensitive parametric amplifiers.
  • The present invention further relates to a system comprising a transmission medium, a plurality of transceivers configured to introduce the electromagnetic wave signal into the transmission medium and retrieve the electromagnetic wave signal from the transmission medium, and one or more laser sources, wherein at least one of the one or more laser sources is configured to provide a laser beam to at least two of the plurality of transceivers.
  • In at least one embodiment, each of the plurality of transceivers comprises one or more transmitters and one or more receivers, and the at least one of the one or more laser sources provides the laser beam to at least one of the one or more transmitters in one of the at least two of the plurality of transceivers and to at least one of the one or more receivers in the other one of the at least two of the plurality of transceivers.
  • In at least one embodiment, each of the plurality of transceivers comprises one or more transmitters and one or more receivers, and at least one of the one or more laser sources is configured to provide a laser beam to at least one of the one or more transmitters in one of the plurality of transceivers and to at least one of the one or more receivers in the same one of the plurality of transceivers.
  • In at least one embodiment, the system further comprises a single clock source configured to provide a clock signal to at least two of the plurality of transceivers.
  • In at least one embodiment, the at least one of the one or more laser sources provides the laser beam to a modulator in the at least one of the one or more transmitters in the one of the at least two of the plurality of transceivers and to a mixer in the at least one of the one or more receivers in the other one of the at least two of the plurality of transceivers.
  • In at least one embodiment, the at least one of the one or more laser sources provides the laser beam to a modulator in the at least one of the one or more transmitters in the one of the plurality of transceivers and to a mixer in the at least one of the one or more receivers in the same one of the plurality of transceivers.
  • In at least one embodiment, the single clock source provides the clock signal to an IC in each of the at least two of the plurality of transceivers.
  • In at least one embodiment, the transmission medium comprises a waveguide.
  • In at least one embodiment, the waveguide comprises an optical fiber.
  • In at least one embodiment, the transmission medium comprises free space.
  • In at least one embodiment, the transmission medium is configured to store an electromagnetic wave signal.
  • In at least one embodiment, the plurality of transceivers is substantially co-located.
  • In addition, the present invention also relates to a method for storing an electromagnetic wave signal in a transmission medium, the method comprising amplifying or regenerating, using a plurality of signal conditioners coupled to the transmission medium, an electromagnetic signal traveling in the transmission medium, providing, from one or more pump laser sources, pump laser beams to the plurality of signal conditioners, wherein at least one of the one or more pump laser sources provides a pump laser beam to at least two of the plurality of signal conditioners, and controlling, using one or more control circuits, the plurality of signal conditioners, wherein at least one of the one or more control circuits controls at least two of the plurality of signal conditioners.
  • In at least one embodiment, the transmission medium comprises a waveguide.
  • In at least one embodiment, the waveguide comprises an optical fiber.
  • In at least one embodiment, the transmission medium comprises free space.
  • In at least one embodiment, the plurality of signal conditioners comprises amplifiers, regenerators, or a combination of amplifiers and regenerators.
  • In at least one embodiment, the amplifiers comprise at least one phase sensitive amplifier.
  • In at least one embodiment, the regenerators comprise at least one phase sensitive parametric amplifier.
  • In at least one embodiment, each of the amplifiers comprises a fiber amplifier doped with a gain medium.
  • In at least one embodiment, the gain medium comprises a fluorescent element.
  • In at least one embodiment, the gain medium comprises a rare-earth element.
  • In at least one embodiment, the gain medium comprises erbium.
  • In at least one embodiment, the method further comprises combining, using a coupler, the pump laser beam with the electromagnetic wave signal and sending, using the coupler, the combined beam/signal to a corresponding one of the plurality of signal conditioners.
  • In at least one embodiment, the at least one of the one or more control circuits comprises a photodetector and a processor, and the controlling step comprises measuring, using the photodetector, input and output optical powers of each of the at least two of the plurality of signal conditioners, and comparing, using the processor, the measured input and output optical powers to adjust an input pump laser power for the each of the at least two of the plurality of signal conditioners.
  • In at least one embodiment, the method further comprises controlling, using a variable attenuator coupled to the at least one of the one or more pump laser sources and to the at least one of the one or more control circuits, the pump laser beam to be sent to a corresponding one of the plurality of signal conditioners based on the adjusted input pump laser power determined by the comparing step.
  • In at least one embodiment, the regenerating step comprises re-amplifying, re-shaping, or re-timing, using the regenerators, the electromagnetic wave signal traveling in the transmission medium.
  • In at least one embodiment, the re-timing step comprises providing, using one or more clock sources, clock signals to the regenerators, wherein at least one of the one or more clock sources provides a clock signal to at least two of the regenerators.
  • In at least one embodiment, the regenerating step is performed all optically in an optical domain.
  • In at least one embodiment, the plurality of signal conditioners is substantially co-located.
  • In at least one embodiment, the amplifying or regenerating step comprises using one or more multiplexers, wherein at least one of the one or more multiplexers is communicably coupled to at least two of the plurality of signal conditioners.
  • In at least one embodiment, the at least two of the plurality of signal conditioners comprise at least two regenerators.
  • In at least one embodiment, the at least two regenerators comprise at least two phase sensitive parametric amplifiers.
  • In at least one embodiment, the amplifying or regenerating step comprises using one or more demultiplexers, wherein at least one of the one or more demultiplexers is communicably coupled to at least two of the plurality of signal conditioners.
  • In at least one embodiment, the at least two of the plurality of signal conditioners comprise at least two regenerators.
  • In at least one embodiment, the at least two regenerators comprise at least two phase sensitive parametric amplifiers.
  • Furthermore, the present invention also relates to a method of using a plurality of transceivers connected to a transmission medium, the method comprising inputting, using the plurality of transceivers, an electromagnetic wave signal into the transmission medium, outputting, using the plurality of transceivers, the electromagnetic wave signal from the transmission medium, and providing, from a single laser source, a laser beam to at least two of the plurality of transceivers.
  • In at least one embodiment, each of the plurality of transceivers comprises one or more transmitters and one or more receivers, and the single laser source provides the laser beam to at least one of the one or more transmitters in one of the at least two of the plurality of transceivers and to at least one of the one or more receivers in the other one of the at least two of the plurality of transceivers.
  • In at least one embodiment, each of the plurality of transceivers comprises one or more transmitters and one or more receivers, the method further comprising the step of providing, from the single laser source, a laser beam to at least one of the one or more transmitters in one of the plurality of transceivers and to at least one of the one or more receivers in the same one of the plurality of transceivers.
  • In at least one embodiment, the method further comprises providing, from a single clock source, a clock signal to at least two of the one or more transceivers.
  • In at least one embodiment, the single laser source provides the laser beam to a modulator in the at least one of the one or more transmitters in the one of the at least two of the plurality of transceivers and to a mixer in the at least one of the one or more receivers in the other one of the at least two of the plurality of transceivers.
  • In at least one embodiment, the single laser source provides the laser beam to a modulator in the at least one of the one or more transmitters in the one of the plurality of transceivers and to a mixer in the at least one of the one or more receivers in the same one of the plurality of transceivers.
  • In at least one embodiment, the single clock source provides the clock signal to an IC in each of the at least two of the plurality of transceivers.
  • In at least one embodiment, the transmission medium comprises a waveguide.
  • In at least one embodiment, the waveguide comprises an optical fiber.
  • In at least one embodiment, the transmission medium comprises free space.
  • In at least one embodiment, the transmission medium is configured to store an electromagnetic wave signal.
  • In at least one embodiment, the plurality of transceivers is substantially co-located.
  • Although specific features, capabilities and advantages have been enumerated above, various embodiments may include some, none, or all of the enumerated features, capabilities and advantages. These and other technical features, capabilities and advantages of the disclosed subject matter, along with the invention itself, will be more fully understood after a review of the following figures, detailed descriptions and claims.
  • BRIEF DESCRIPTION OF THE DRAWINGS
  • Exemplary embodiments of the present invention will be described with references to the accompanying figures, wherein:
  • FIG. 1 is a schematic diagram of multiple amplifiers sharing components in accordance with an exemplary embodiment of the present invention.
  • FIG. 2 is a schematic diagram of multiple regenerators sharing components n accordance with an exemplary embodiment of the present invention.
  • FIG. 3 is a schematic diagram of multiple transceivers sharing components in accordance with an exemplary embodiment of the present invention.
  • DETAILED DESCRIPTION OF PREFERRED EMBODIMENTS
  • Information or any kind of data can be stored as electromagnetic waves (e.g., coherent (i.e., laser) or non-coherent optical beams, radio frequency (RF) signals, and other types of electromagnetic wave signals, to name a few), which can be transmitted and/or reflected between structures or within structures in various transmission media (e.g., free space, outer space, vacuum, underwater, crystals, nonlinear media, waveguides, optical fibers, to name a few). For example, a recirculating loop may be used to store “data in motion” by keeping electromagnetic wave signals, which may carry data, in a continuous motion, transmitted and/or reflected between or within structures and regenerated (e.g., by signal amplification) as needed. The recirculating loop may comprise a transmission medium (e.g., free space, waveguide, optical fiber, cavity under a vacuum condition, to name a few) through which an electromagnetic wave signal can travel, and one or more transceivers configured to introduce the electromagnetic wave signal into the transmission medium and retrieve the electromagnetic wave signal from the transmission medium. For example, the recirculating loop may be formed by satellites and/or other vessels that reflect or otherwise retransmit the data in free space. In another example, the recirculating loop may comprise a waveguide, such as an optical fiber. Various systems and methods of storing data in motion in a recirculating loop are described in U.S. patent application Ser. No. 15/465,356, which has been published as US 2017/0280211 A1 and is incorporated by reference herein in its entirety.
  • In one example, a satellite-based laser, a land or on/under-water based laser or optical beam, or any other electromagnetic radiation may be used to transmit and store data. The terms “electromagnetic wave signal” and “electromagnetic wave beam” are used herein interchangeably. Electromagnetic radiation or electromagnetic beam as used herein may include any kind of electromagnetic signal, including a laser beam or signal, a maser beam or signal, an optical beam or signal, or any type of wired or wireless signal, including acoustic waves, radio waves, IR radiation, UV radiation, microwave-band transmission, or any combination of more than one of the foregoing. While referred to herein sometimes simply as a laser beam or signal, other types of optical signals and other types of electromagnetic radiation transmissions, including radio waves, microwaves, IR, UV and combinations of bandwidths of wavelengths of electromagnetic radiation, whether guided, shaped, phased, or none of the foregoing, are also intended to be included.
  • In embodiments, systems for storing electromagnetic wave signals in a recirculating loop may be configured to extinguish or “turn off” the electromagnetic wave signals stored therein. When the electromagnetic wave signals are extinguished, data stored therein is definitively and instantly lost and cannot be recovered, unlike the data erased from a solid-state memory.
  • Disclosed are systems and methods for building, operating and/or controlling multiple signal conditioners (e.g., amplifiers, regenerators, a combination of amplifiers and regenerators, to name a few) and/or transceivers using shared common components to achieve a more efficient and/or cost-effective design. Such systems and methods may be used in conjunction with a recirculating loop for storing data in motion, or with other devices or systems of the similar architecture.
  • For example, multiple signal conditioners, such as amplifiers, regenerators, or a combination of amplifiers and regenerators, may be placed along the path of an electromagnetic wave signal to restore the passing electromagnetic wave signal to its original or previous state and/or to compensate for any degradation.
  • An amplifier may be any device configured to amplify an electromagnetic wave signal. In embodiments, an amplifier may comprise crystals or optical fibers. In embodiments, the crystals and optical fibers may be doped with a gain medium comprising, for example, a fluorescent element or a rare-earth element, such as erbium. In embodiments, the optical fiber used in the amplifier may include additional devices at the input to inject the electromagnetic wave signal into the optical fiber, and other devices at the output to restore the electromagnetic wave beam to its original shape and size.
  • Each amplifier may require many, various components. For example, an amplifier may be used in conjunction with a pump laser source, which is configured to provide a pump laser beam to the amplifier. In another example, an amplifier may be used in conjunction with a control circuit, which is configured to control the operation of the amplifier.
  • Amplifiers, such as erbium-doped fiber amplifiers (EDFAs), are typically used to periodically amplify electromagnetic wave signals in an optical fiber communication link that extends over a long distance. Such periodic gains provided by the amplifiers along the fiber communication link offset the signal power loss due to the transmission optical fiber. In a conventional system, amplifiers are placed apart from each other (e.g., placed at intervals of 50 to 100 kilometers) such that each amplifier is likely isolated from the other amplifiers and cannot readily “share” components with the other amplifiers. Each amplifier comprises many components. For example, each EDFA used in such a conventional system may comprise erbium doped fiber, pump laser source, optical isolator, optical coupler and control circuit.
  • By contrast, a system, such as a system for storing data in motion using a recirculating loop, can be configured such that multiple amplifiers can be placed at the same location, or substantially co-located, i.e., located in the vicinity of each other (e.g., near or substantially adjacent to each other, physically located in the same room or space, etc.). In such a system, it is possible for multiple amplifiers such as EDFAs to share one or more common components in order to achieve a more efficient and cost-effective design.
  • In addition, systems and methods for building, operating and/or controlling multiple signal conditioners (e.g., amplifiers, regenerators, a combination of amplifiers and regenerators, to name a few) and/or transceivers using shared common components may also be used in conjunction with other types of architectures wherein transmission equipment are placed at the same location, or substantially co-located, i.e., located in the vicinity of each other (e.g., near or substantially adjacent to each other, physically located in the same room or space, etc.). Examples of these types of architectures may include, but are not limited to, data centers where information may be sent and received within the same facility, and sensing equipment, such as RADAR and LIDAR, which send and receive data to and from the same location.
  • FIG. 1 is a schematic diagram of a system 100 comprising at least two substantially co-located EDFAs sharing common components, such as a pump laser source 103 and/or a control circuit 104, in accordance with an exemplary embodiment of the present invention. In embodiments, the substantially co-located EDFAs may be coupled to each other by a transmission medium, such as a transmission fiber 123. FIG. 1 shows an electromagnetic wave signal 101 entering a first EDFA 121, 122. The amplified signal then passes through a transmission fiber 123. The signal then enters a second EDFA 124, 125 and exits the second EDFA as an amplified signal 102.
  • A single pump laser source 103 having sufficient output power may be used to provide a pump laser beam to two or more multiple EDFAs. As shown in FIG. 1, the output power of the pump laser source 103 may be split and sent to variable attenuators 111, 112, each of which may be coupled to the corresponding one of the multiple EDFAs. The variable attenuator 111, 112 may be configured to control the specific pump laser power needed for the corresponding EDFA. The pump laser beam may then be sent from the variable attenuators 111, 112 to erbium-doped fibers 122, 125 through the corresponding couplers 121, 124. Each of the couplers 121, 124 may be configured to combine the pump laser beam from the pump laser source 103 (via variable attenuators 111, 112) with the electromagnetic wave signal and send the combined pump laser beam and electromagnetic wave signal to the corresponding erbium-doped fiber 122, 125 to achieve amplification of the electromagnetic wave signal.
  • As shown in FIG. 1, at least two of the multiple EDFAs may be used in conjunction with a shared control circuit 104, which may be configured to control the operation of the EDFAs, such as the gain of the amplifiers. For example, the input power to and output power from the erbium-doped fiber 122, 125 may be measured by using, for example, a photodetector in the control circuit 104. The measured input and output powers may then be compared by using, for example, a processor comprising electronic circuitry in the control circuit 104 to determine the amplifier characteristics, such as gain. As a result of the comparison, the pump laser power input to the coupler 121, 124 can be adjusted accordingly. In embodiments, this adjustment of the pump laser power input may be performed by the pump laser source 103 and/or variable attenuator 111, 112 based on control signals from the control circuit 104, as shown in FIG. 1.
  • In embodiments, the shared control circuit 104 may be much faster than the changes that might occur to the amplifier gain. As such, by using many couplers and taking optical/electronic measurements sequentially from different multiple erbium-doped fibers, many EDFAs can share a single control circuit.
  • In embodiments, the pump laser source 103 and the control circuit 104 may account for a large fraction of the cost of the multiple EDFAs in the system 100. As such, sharing of the pump laser source and/or the control circuit by multiple EDFAs can provide the benefit of efficiency and cost-effectiveness.
  • As another example, phase sensitive amplifiers (PSAs) may be configured such that substantially co-located multiple PSAs can share one or more common components, such as a pump laser source, control circuit, and/or clock signal.
  • In long distance communication systems, wave distortion and relative time delay deviation may be accumulated even when amplifiers for regenerating signal amplitudes are used. This problem may require periodic regeneration by one or more regenerators to regenerate the original/previous waveform and synchronization of signals. For example, regenerators may be used for communication systems involving a distance of greater than 100 kilometers. A full signal regeneration, which is typically called a “3R” process, involves signal retiming, reshaping, and reamplification (or amplification) of the electromagnetic wave signal. A regenerator may be configured to conduct full electromagnetic wave signal regeneration. Alternatively, a regenerator may be configured to restore only some aspects of the electromagnetic wave signal by re-timing and/or re-shaping and/or re-amplification of the electromagnetic wave signal in part. In embodiments, the regenerator may also be configured to implement error correction to restore lost information or correct errors introduced into the data in motion. In embodiments, the regenerator may be used in conjunction with Wavelength Division Multiplexing (WDM), which enables the regenerator to improve the signal quality on different wavelength channels.
  • Any apparatus configured to re-amplify, re-shape, and/or re-time the electromagnetic wave signal in full or in part may be used to build regenerators. Regenerators can be implemented in various ways. In embodiments, the regenerator may be an all-optical or optoelectronic regenerator, wherein the all-optical regenerator is configured to regenerate the electromagnetic wave signal all optically in the optical domain, while the optoelectronic regenerator is configured to convert the electromagnetic wave signal to a corresponding electrical signal in the electrical domain, regenerate the converted electrical signal electrically and convert the regenerated electrical signal to a corresponding electromagnetic wave signal in the optical domain. In embodiments, the regenerator may comprise at least one amplifier and at least one absorber. In embodiments, the regenerator may comprise at least one amplifier configured to operate in a saturation regime. In embodiments, the regenerator may comprise a nonlinear filter configured to provide gain stabilization and/or reduce noise in the electromagnetic wave signal. In embodiments, the regenerator may comprise crystals or optical fibers. In embodiments, the regenerator may comprise crystals or optical fibers doped by a fluorescent element or a rare-earth element, such as erbium. In embodiments, the optical fiber used in the regenerator may comprise additional devices at the input to inject the electromagnetic wave signal into the optical fiber, and other devices at the output to restore the electromagnetic wave beam to its original shape and size. In embodiments, the regenerator may comprise at least one phase sensitive parametric amplifier.
  • In a system (e.g., a system for storing data in motion using a recirculating loop) where multiple regenerators can be substantially co-located, it is possible for multiple regenerators to share one or more common components in order to achieve a more efficient and cost-effective design.
  • FIG. 2 is a schematic diagram of a system 200 comprising at least two substantially co-located regenerators 232, 235 sharing common components, such as a pump laser source 203, a control circuit 204, and/or a clock source 205, in accordance with an exemplary embodiment of the present invention. In embodiments, the substantially co-located regenerators 232, 235 may be coupled to each other by a transmission medium, such as a transmission fiber 233. FIG. 2 shows an electromagnetic wave signal 201 entering a first regenerator 232 through the corresponding coupler 231. The regenerated signal then passes through a transmission fiber 233. The signal then enters a second regenerator 235 through the corresponding coupler 234 and exits the second regenerator as a regenerated signal 202.
  • A single pump laser source 203 having sufficient output power may be used to provide a pump laser beam to two or more multiple regenerators 232, 235. As shown in FIG. 2, the output power of the pump laser source 203 may be split and sent to variable attenuators 211, 212, each of which may be coupled to the corresponding one of the multiple regenerators 232, 235. The variable attenuator 211, 212 may be configured to control the specific pump laser power needed for the corresponding regenerator. The pump laser beam may then be sent from the variable attenuators 211, 212 to the regenerators 232, 235 through the corresponding couplers 231, 234. Each of the couplers 231, 234 may be configured to combine the pump laser beam from the pump laser source 203 (via variable attenuators 211, 212) with the electromagnetic wave signal and to send the combined pump laser beam and electromagnetic wave signal to the corresponding regenerator 232, 235 to achieve full or partial regeneration of the electromagnetic wave signal.
  • As shown in FIG. 2, at least two of the multiple regenerators 232, 235 may be used in conjunction with a shared control circuit 204, which may be configured to control the operation of the regenerators, such as the gain of the regenerators. For example, the input power to and output power from the regenerator 232, 235 may be measured by using, for example, a photodetector in the control circuit 204. The measured input and output powers may then be compared by using, for example, a processor comprising electronic circuitry in the control circuit 204 to determine the regenerator characteristics, such as gain. As a result of the comparison, the pump laser power input to the coupler 231, 234 can be adjusted accordingly. In embodiments, this adjustment of the pump laser power input may be performed by the pump laser source 203 and/or variable attenuator 211, 212 based on control signals from the control circuit 204, as shown in FIG. 2.
  • In embodiments, the shared control circuit 204 may be much faster than the changes that might occur to the regenerator gain. As such, by using many couplers and taking optical/electronic measurements sequentially from different multiple regenerators, many regenerators can share a single control circuit.
  • As shown in FIG. 2, at least two of the substantially co-located multiple regenerators 232, 235 may use a shared clock source 205, which may be configured to provide a clock signal to each of at least two of the multiple regenerators 232, 235 for re-timing the electromagnetic wave signal.
  • In embodiments, the system 200 may further comprise one or more multiplexers (not shown in FIG. 2), wherein at least one of the one or more multiplexers is communicably coupled to and shared by the two substantially co-located regenerators 232, 235. Additionally or alternatively, the system 200 may further comprise one or more demultiplexers (not shown in FIG. 2), wherein at least one of the one or more demultiplexers is communicably coupled to and shared by the two substantially co-located regenerators 232, 235. In embodiments, the two regenerators 232, 235 sharing at least one of the one or more multiplexers and/or at least one of the one or more demultiplexers comprise phase sensitive parametric amplifiers.
  • In embodiments, the pump laser source 203, the control circuit 204, the clock source 205 and/or multiplexers/demultiplexers may account for a large fraction of the cost of the multiple regenerators in the system 200. As such, sharing of one or more common components, such as pump laser source, control circuit, clock source and/or multiplexers/demultiplexers, by multiple regenerators can provide the benefit of efficiency, cost-effectiveness and overall reduction in power consumption of the regenerators.
  • Transceivers may be used to transmit and receive electromagnetic wave signals through a transmission medium, such as free space, waveguide, optical fiber, to name a few. In embodiments, a transceiver may comprise one or more transmitters and one or more receivers. In embodiments, a transceiver may comprise many components, such as input/output interfaces, modulators, mixers, amplifiers, active optic cables, and/or integrated circuits (e.g., application specific integrated circuit (ASIC)) comprising, for example, a digital signal processor (DSP), an optical transport network (OTN) framer/deframer, an analog-to-digital converter (ADC), and/or a digital-to-analog converter. (DAC).
  • In a system (e.g., a system for storing data in motion using a recirculating loop) where multiple transceivers can be substantially co-located, it is possible for multiple transceivers to share one or more common components in order to achieve a more efficient and cost-effective design.
  • FIG. 3 is a schematic diagram of a system 300 comprising at least two substantially co-located transceivers 305, 306 sharing common components, such as a laser source 303 and/or a clock source 304, in accordance with an exemplary embodiment of the present invention. In embodiments, the substantially co-located transceivers 305, 306 may be coupled to each other by a transmission medium, such as a transmission fiber 307, as shown in FIG. 3. FIG. 3 shows an electromagnetic wave signal 301 traveling in to or out of a first transceiver 305 through a first input/output interface 311, and the corresponding electromagnetic wave signal 302 traveling in to or out of a second transceiver 306 through a second input/output interface 318. For example, the electromagnetic wave signal 301 enters the first transceiver 305 through the first input/output interface 311 and then passes through a first integrated circuit (IC) 312, a first modulator/mixer 313 and a first amplifier 314 of the first transceiver 305. The signal is then transmitted through the transmission fiber 307, and then passes through a second amplifier 315, a second modulator/mixer 316 and a second integrated circuit 317 of the second transceiver 306. The second transceiver 306 outputs the corresponding electromagnetic wave signal 302 through the second input/output interface 318. In alternative embodiments, the electromagnetic wave signal 302 may travel in the reverse direction such that the first transceiver 305 outputs the corresponding electromagnetic wave signal 301 through the first input/output interface 311.
  • At least two of the substantially co-located multiple transceivers 305, 306 may use a shared laser source 303. As shown in FIG. 3, the laser source 303 may be configured to provide a laser beam to the first transceiver 305 and to the second transceiver 306. In embodiments, if the first transceiver 305 is a transmit side and the second transceiver 306 is a receive side and each transceiver comprises one or more transmitters and one or more receivers, the laser source 303 may provide a laser beam to at least one of the one or more transmitters in the first transceiver 305 and to at least one of one or more receivers in the second transceiver 306. In embodiments, if the first transceiver 305 is a transmit side and the second transceiver 306 is a receive side and each transceiver comprises one or more transmitters and one or more receivers, the laser source 303 may provide a laser beam to a modulator 313 in at least one of the one or more transmitters in the first transceiver 305 and to a mixer 316 in at least one of one or more receivers in the second transceiver 306, as shown in FIG. 3. It should be noted that the pairs of transceivers that are sharing the laser sources will often transmit and receive light on the same wavelength.
  • In further embodiments, the laser source 303 may be configured to provide a laser beam to at least one of the one or more transmitters in at least one of the multiple transceivers 305, 306 and to at least one of the one or more receivers in the same one of the multiple transceivers 305, 306. In further embodiments, the laser source 303 may be configured to provide a laser beam to a modulator in at least one of the one or more transmitters in at least one of the multiple transceivers 305, 306 and to a mixer in at least one of the one or more receivers in the same one of the multiple transceivers 305, 306.
  • At least two of the substantially co-located multiple transceivers may use a shared clock source, which may be configured to provide a clock signal to each of at least two of the multiple transceivers. In embodiments, as shown in FIG. 3, a clock source 304 may be configured to provide a clock signal to the first IC 312 in the first transceiver 305 and to the second IC 317 in the second transceiver 306.
  • The use of shared components, such as laser sources and/or clock sources, by multiple transceivers leads to an efficient and cost-effective design by, for example, reducing the number of components used, decreasing the amount of digital signal processing used, reducing power consumption and lowering the capital and operating cost of manufacturing and maintaining the transceivers without affecting the performance of transmission.
  • While this invention has been described in conjunction with exemplary embodiments outlined above and illustrated in the drawings, it is evident that the principles of the present invention may be implemented using any number of techniques, whether currently known or not, and many alternatives, modifications and variations in form and detail will be apparent to those skilled in the art. Modifications, additions, or omissions may be made to the systems, apparatuses, and methods described herein without departing from the scope of the present invention. For example, the components of the systems and apparatuses may be integrated or separated. Furthermore, the operations of the systems and apparatuses disclosed herein may be performed by more, fewer, or other components and the methods described may include more, fewer, or other steps. Additionally, steps may be performed in any suitable order.
  • As defined herein, electromagnetic waves include acoustic waves. Accordingly, storage in motion of information or any kind of data can also be implemented using acoustic (i.e., sound) waves. Representative values for the speed of sound include about 1,500 m/sec in water, about 330 m/sec in air, and about 6,000 m/sec in steel. (There are a range of velocities for each case.) In terms of frequency, sound waves can be in the region of tens of MHz. For example, some medical ultrasound devices operate in the regions of tens of MHz. Usually, lower frequency sound also has less attenuation over distance.
  • A benefit of using acoustic waves for storage in motion is the relatively slower speed of sound. In this regard, if the wave signal carrying information or any kind of data in motion is an acoustic wave, the much lower speed of sound (as compared to the speed of light) enables one to store a greater amount of data in motion in a cavity without requiring a higher data rate at which the data is introduced into the cavity.
  • Acoustic waves require some medium in order to propagate. Information or any kind of data can be transmitted and/or reflected between structures or within structures using acoustic waves in various transmission media (e.g., air and steel, to name a few). Embodiments of storage in motion using acoustic waves could be constructed using such media. For steel, railroad tracks could be a long-distance medium. Acoustic waves can be generated using various sources of vibration, including crystal transducers and speakers, to name a few. Microphones detect acoustic waves. There is a significant base of acoustic technology in sound systems, in systems to eliminate vibration, and in systems to measure vibration. This device technology can be utilized in developing storage in motion systems using acoustic waves in accordance with the principles employed in the embodiments disclosed in the present application.
  • Accordingly, the exemplary embodiments of the invention, as set forth above, are intended to be illustrative, not limiting, and the spirit and scope of the present invention is to be construed broadly and limited only by the appended claims, and not by the foregoing specification.
  • In addition, unless otherwise specifically noted, articles depicted in the drawings are not necessarily drawn to scale.

Claims (23)

What is claimed is:
1. A system comprising:
a recirculating loop configured to store an electromagnetic wave signal, the recirculating loop comprising a transmission medium;
a plurality of signal conditioners coupled to the transmission medium, the plurality of signal conditioners configured to amplify or regenerate an electromagnetic wave signal traveling in the transmission medium; and
one or more pump laser sources, wherein at least one of the one or more pump laser sources is configured to provide a pump laser beam to at least two of the plurality of signal conditioners.
2. The system of claim 1, wherein the transmission medium comprises at least one of a waveguide, an optical fiber, or free space.
3. The system of claim 1, wherein the plurality of signal conditioners comprise amplifiers, regenerators, or a combination of amplifiers and regenerators.
4. The system of claim 3, wherein:
each of the amplifiers comprises a fiber amplifier doped with a gain medium; and
the gain medium comprises at least one of a fluorescent element, a rare-earth element, or erbium.
5. The system of claim 1, further comprising a coupler configured to combine the pump laser beam with the electromagnetic wave signal and send the combined beam/signal to a corresponding one of the plurality of signal conditioners.
6. The system of claim 1, further comprising:
one or more control circuits for controlling the plurality of signal conditioners, wherein at least one of the one or more control circuits is configured to control at least two of the plurality of signal conditioners;
wherein the at least one of the one or more control circuits comprises:
a photodetector configured to measure input and output optical powers of each of the at least two of the plurality of signal conditioners; and
a processor configured to compare the measured input and output optical powers and adjust an input pump laser power for the each of the at least two of the plurality of signal conditioners.
7. The system of claim 6, further comprising a variable attenuator coupled to the at least one of the one or more pump laser sources and to the at least one of the one or more control circuits, wherein the variable attenuator is configured to control the pump laser beam to be sent to a corresponding one of the plurality of signal conditioners based on the adjusted input pump laser power determined by the processor in the at least one of the one or more control circuits.
8. The system of claim 3, wherein the regenerators are configured to re-amplify, re-shape, or re-time the electromagnetic wave signal traveling in the transmission medium.
9. The system of claim 8, further comprising one or more clock sources, wherein at least one of the one or more clock sources is configured to provide a clock signal to at least two of the regenerators for re-timing the electromagnetic wave signal.
10. The system of claim 3, wherein:
the regenerators comprise crystals or optical fibers; and
the crystals or the optical fibers are doped with at least one of a fluorescent element, a rare-earth element, or erbium.
11. The system of claim 3, wherein the regenerators comprise at least one of all-optical regenerators; at least one amplifier and at least one absorber; at least one amplifier configured to operate in a saturation regime; or at least one nonlinear filter.
12. A method for storing an electromagnetic wave signal in a transmission medium, the method comprising:
amplifying or regenerating, using a plurality of signal conditioners coupled to the transmission medium, an electromagnetic signal traveling in the transmission medium; and
providing, from one or more pump laser sources, pump laser beams to the plurality of signal conditioners, wherein at least one of the one or more pump laser sources provides a pump laser beam to at least two of the plurality of signal conditioners.
13. The method of claim 12, wherein the transmission medium comprises at least one of a waveguide, an optical fiber, or free space.
14. The method of claim 12, wherein the plurality of signal conditioners comprises amplifiers, regenerators, or a combination of amplifiers and regenerators.
15. The method of claim 14, wherein:
each of the amplifiers comprises a fiber amplifier doped with a gain medium; and
the gain medium comprises at least one of a fluorescent element, a rare-earth element, or erbium.
16. The method of claim 12, further comprising combining, using a coupler, the pump laser beam with the electromagnetic wave signal and sending, using the coupler, the combined beam/signal to a corresponding one of the plurality of signal conditioners.
17. The method of claim 12, further comprising:
controlling, using one or more control circuits, the plurality of signal conditioners, wherein at least one of the one or more control circuits controls at least two of the plurality of signal conditioners;
wherein:
the at least one of the one or more control circuits comprises a photodetector and a processor; and
the controlling step comprises:
measuring, using the photodetector, input and output optical powers of each of the at least two of the plurality of signal conditioners; and
comparing, using the processor, the measured input and output optical powers to adjust an input pump laser power for the each of the at least two of the plurality of signal conditioners.
18. The method of claim 17, further comprising controlling, using a variable attenuator coupled to the at least one of the one or more pump laser sources and to the at least one of the one or more control circuits, the pump laser beam to be sent to a corresponding one of the plurality of signal conditioners based on the adjusted input pump laser power determined by the comparing step.
19. The method of claim 14, wherein the regenerating step comprises re-amplifying, re-shaping, or re-timing, using the regenerators, the electromagnetic wave signal traveling in the transmission medium.
20. The method of claim 19, wherein the re-timing step comprises providing, using one or more clock sources, clock signals to the regenerators, wherein at least one of the one or more clock sources provides a clock signal to at least two of the regenerators.
21. The method of claim 12, wherein the regenerating step is performed all optically in an optical domain.
22. The system of claim 1, further comprising at least one of one or more multiplexers, wherein at least one of the one or more multiplexers is communicably coupled to at least two of the plurality of signal conditioners, or one or more demultiplexers, wherein at least one of the one or more demultiplexers is communicably coupled to at least two of the plurality of signal conditioners.
23. The method of claim 12, wherein the amplifying or regenerating step comprises at least one of using one or more multiplexers, wherein at least one of the one or more multiplexers is communicably coupled to at least two of the plurality of signal conditioners, or using one or more demultiplexers, wherein at least one of the one or more demultiplexers is communicably coupled to at least two of the plurality of signal conditioners.
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Families Citing this family (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
MX2020013687A (en) * 2018-07-03 2021-05-27 Inficon Inc A method for displaying concentration data of a substance and an associated apparatus.
JP2022505417A (en) * 2018-11-05 2022-01-14 ライトループ・テクノロジーズ・エルエルシー Systems and methods for building, operating and controlling multiple amplifiers, regenerators and transceivers using shared common components
US11211707B1 (en) * 2020-11-13 2021-12-28 Lyteloop Technologies, Llc Apparatus for broadband wavelength conversion of dual-polarization phase-encoded signal

Citations (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US11243355B2 (en) * 2018-11-05 2022-02-08 Lyteloop Technologies, Llc Systems and methods for building, operating and controlling multiple amplifiers, regenerators and transceivers using shared common components

Family Cites Families (191)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3277450A (en) 1961-01-11 1966-10-04 Gen Electric High speed information storage system
US3229258A (en) 1961-07-18 1966-01-11 Harry L Heibeck Digital storage system
US3141153A (en) 1961-10-20 1964-07-14 Beckman Instruments Inc Immediate sequential access memory
US3164809A (en) 1963-10-01 1965-01-05 Gen Dynamics Corp Self-synchronizing delay line data recirculation loop
US3350697A (en) 1965-02-24 1967-10-31 Collins Radio Co Storage means for receiving, assembling, and distributing teletype characters
US3411142A (en) 1965-12-27 1968-11-12 Honeywell Inc Buffer storage system
JPS579041B2 (en) 1974-11-29 1982-02-19
US4014166A (en) 1976-02-13 1977-03-29 The United States Of America As Represented By The Secretary Of Commerce Satellite controlled digital clock system
US4166212A (en) 1977-06-03 1979-08-28 International Standard Electric Corporation Recirculating optical delay line
US4180814A (en) 1978-03-13 1979-12-25 International Standard Electric Corporation Multiple beam receiving array signal processor
US4656666A (en) 1979-10-01 1987-04-07 Piekenbrock Lawrence J Method and apparatus for handling information
US4359733A (en) 1980-09-23 1982-11-16 Neill Gerard K O Satellite-based vehicle position determining system
US4455651A (en) 1980-10-20 1984-06-19 Equatorial Communications Company Satellite communications system and apparatus
US4473270A (en) 1981-10-23 1984-09-25 Leland Stanford Junior University Splice-free fiber optic recirculating memory
US4479701A (en) 1981-12-01 1984-10-30 Leland Stanford Junior University Dual coupler fiber optic recirculating memory
FR2527799B1 (en) 1982-05-28 1986-05-23 Thomson Csf DEVICE FOR STORING A CONSISTENT IMAGE IN A MULTIMODE OPTICAL CAVITY
US4588255A (en) 1982-06-21 1986-05-13 The Board Of Trustees Of The Leland Stanford Junior University Optical guided wave signal processor for matrix-vector multiplication and filtering
US4469397A (en) 1982-09-29 1984-09-04 Board Of Trustees Of The Leland Stanford Junior University Fiber optic resonator
US4652079A (en) 1983-08-26 1987-03-24 The Board Of Trustees Of The Leland Stanford Junior University High speed pulse train generator
FR2553951B1 (en) 1983-10-25 1985-12-27 Thomson Csf INFORMATION STORAGE DEVICE IN A FIBER OPTIC TRANSMISSION SYSTEM
US4744083A (en) 1984-09-14 1988-05-10 Geostar Corporation Satellite-based position determining and message transfer system with monitoring of link quality
US4708421A (en) 1985-02-08 1987-11-24 The Board Of Trustees Of The Leland Stanford Junior University In-line fiber optic memory
US4738503A (en) 1985-02-08 1988-04-19 The Board Of Trustees Of The Leland Stanford Junion University In-line fiber optic memory
US4815804A (en) 1985-02-08 1989-03-28 The Board Of Trustees Of The Leland Stanford Junior University In-line fiber optic memory and method of using same
US4856862A (en) 1988-04-22 1989-08-15 Photonics Laboratories, Inc. Optical storage method and apparatus
US4877952A (en) 1988-10-11 1989-10-31 American Telephone And Telegraph Company Faser cavity optical memory with optical storage and readout
US5144322A (en) 1988-11-25 1992-09-01 The United States Of America As Represented By The Secretary Of The Navy Large-aperture sparse array detector system for multiple emitter location
US5058060A (en) 1988-12-05 1991-10-15 Gte Laboratories Incorporated Optical memory cell
US4923267A (en) 1988-12-05 1990-05-08 Gte Laboratories Incorporated Optical fiber shift register
US4896948A (en) 1989-02-21 1990-01-30 International Business Machines Corporation Simplified double-cavity tunable optical filter using voltage-dependent refractive index
US4974931A (en) 1989-11-13 1990-12-04 At&T Bell Laboratories Wavelength selective mode couplers
JP2804633B2 (en) 1991-02-12 1998-09-30 日本電信電話株式会社 Optical folding / medium tester
US5335098A (en) 1991-07-26 1994-08-02 Accuwave Corporation Fixing method for narrow bandwidth volume holograms in photorefractive materials
US5440669A (en) 1991-07-26 1995-08-08 Accuwave Corporation Photorefractive systems and methods
JPH0572591A (en) 1991-09-17 1993-03-26 Nippon Telegr & Teleph Corp <Ntt> Optical loop memory
GB9122182D0 (en) 1991-10-18 1991-11-27 British Telecomm Optical memory
JP3469897B2 (en) * 1992-10-15 2003-11-25 財団法人微生物化学研究会 New amino acid derivatives
US5438337A (en) 1993-09-24 1995-08-01 Northrop Grumman Corporation Navigation system using re-transmitted GPS
US5392154A (en) 1994-03-30 1995-02-21 Bell Communications Research, Inc. Self-regulating multiwavelength optical amplifier module for scalable lightwave communications systems
WO1996000996A1 (en) 1994-06-30 1996-01-11 The Whitaker Corporation Planar hybrid optical amplifier
JP2692591B2 (en) 1994-06-30 1997-12-17 株式会社日立製作所 Optical memory device and optical circuit using the same
US5602838A (en) 1994-12-21 1997-02-11 Lucent Technologies Inc. Global multi-satellite network
US5659413A (en) 1995-02-28 1997-08-19 The Mitre Corporation Laser satellite communication system
JP2880927B2 (en) 1995-03-17 1999-04-12 日本電気株式会社 Optical fiber network system
GB9509938D0 (en) * 1995-05-17 1995-07-12 British Tech Group Optical communication systems
US5566261A (en) 1995-05-25 1996-10-15 Massachusetts Institute Of Technology Optical memory and data pattern generator
JPH09321701A (en) 1996-05-31 1997-12-12 Fujitsu Ltd Optical communication system and optical amplifier
US5844700A (en) 1996-07-24 1998-12-01 The Board Of Trustees Of The Leland Stanford Junior University Spatio-angular multiplexing geometry for volume holographic storage
EP0956624A1 (en) 1997-01-31 1999-11-17 Corning Incorporated Fiber lasers with shared pump
DE59802489D1 (en) 1997-03-07 2002-01-31 Contraves Space Ag Zuerich Method and arrangement for operating a laser transmission system for optical free space communication
GB9706370D0 (en) 1997-03-27 1997-05-14 British Telecomm An optical memory
EP0970476B1 (en) 1997-03-27 2003-01-29 BRITISH TELECOMMUNICATIONS public limited company An optical memory
US6839520B1 (en) 1997-05-16 2005-01-04 Contraves Space Ag Method and arrangement for an interruption-proof optical satellite linkage
US6014235A (en) 1997-06-03 2000-01-11 Lucent Technologies Inc. Optical-loop buffer that enhances the extinction ratio of the buffered signal
US5978130A (en) 1997-09-16 1999-11-02 Mci Communications Corporation Dual-band fiber optic amplification system using a single pump source
JP3837460B2 (en) * 1997-10-01 2006-10-25 国立大学法人京都大学 Circular memory method and apparatus using optical waveguide
US6335823B2 (en) * 1997-10-17 2002-01-01 Fujitsu Limited Optical amplifier for use in optical communications equipment
US6043918A (en) 1997-12-12 2000-03-28 Stanford Telecommunications, Inc. Laser satellite communication systems
US5991069A (en) 1998-01-22 1999-11-23 Tyco Submarine Systems, Ltd. Split-pumped dual stage optical fiber amplifier
US6144486A (en) 1998-01-30 2000-11-07 Corning Incorporated Pump wavelength tuning of optical amplifiers and use of same in wavelength division multiplexed systems
US6002916A (en) 1998-02-23 1999-12-14 Lockheed Martin Corporation Space-based server network architecture
US6317232B1 (en) 1998-03-25 2001-11-13 Mci Communications Corporation Bi-directional all-optical regenerator
US6396607B1 (en) 1998-06-30 2002-05-28 Siemens Information And Communication Networks, Inc. Multi-wavelength all-optical regenerators (MARS)
EP1035615B1 (en) 1998-09-30 2008-03-26 Anritsu Corporation Planar antenna and method for manufacturing the same
US7340183B2 (en) 1998-11-17 2008-03-04 Broadwing Corporation Optical communications systems, devices, and methods
CA2266132A1 (en) 1999-03-18 2000-09-18 Terry A. Bisson Satellite communication system
US6275479B1 (en) 1999-03-19 2001-08-14 Spacecode Llc Multiplexed power amplifiers for satellite communication system
US6437890B1 (en) 1999-03-29 2002-08-20 The United States Of America As Represented By The Secretary Of The Navy Laser communications link
US6366356B1 (en) 1999-04-01 2002-04-02 Trw Inc. High average power fiber laser system with high-speed, parallel wavefront sensor
WO2000067350A1 (en) 1999-04-30 2000-11-09 University Of Southampton An optical fibre arrangement
US6912075B1 (en) 1999-05-17 2005-06-28 The Directv Group, Inc. Ring architecture for an optical satellite communication network with passive optical routing
US7103280B1 (en) 1999-06-05 2006-09-05 The Directv Group, Inc. Architecture for an optical satellite communication network
RU2155447C1 (en) 1999-08-09 2000-08-27 Открытое акционерное общество "Ракетно-космическая корпорация "Энергия" им.С.П.Королева" Satellite system for data transmission between customer satellites and ground station
US6674754B1 (en) 1999-11-09 2004-01-06 Synchrodyne Networks, Inc. Wavelength division multiplexing combined with time division multiplexing using a common time reference
US6172926B1 (en) 1999-12-17 2001-01-09 Telcom Semiconductor, Inc. Optical data storage devices and methods
US6535314B1 (en) 2000-01-13 2003-03-18 Trw Inc. Satellite optical communication beam acquisition techniques
FR2805417B1 (en) * 2000-02-21 2002-05-31 Cit Alcatel REGENERATOR FOR WAVELENGTH MULTIPLEXING TRANSMISSION SYSTEM
EP1152553B1 (en) 2000-05-04 2009-12-09 Hughes Electronics Corporation Ground to space to ground trunking system
US6647163B2 (en) 2000-05-22 2003-11-11 Shaowen Song Optical memory apparatus and method
US7151929B1 (en) 2000-08-18 2006-12-19 Northrop Grumman Corporation Satellite payload data communications and processing techniques
US6973271B2 (en) 2000-10-04 2005-12-06 Wave7 Optics, Inc. System and method for communicating optical signals between a data service provider and subscribers
IL156156A0 (en) 2000-11-28 2003-12-23 Lockheed Corp System and method for adaptive broadcast radar system
US7450618B2 (en) 2001-01-30 2008-11-11 Board Of Trustees Operating Michigan State University Laser system using ultrashort laser pulses
US20020110328A1 (en) 2001-02-14 2002-08-15 Bischel William K. Multi-channel laser pump source for optical amplifiers
US6700840B2 (en) 2001-05-30 2004-03-02 Beyond 3, Inc. Optical storage method and apparatus having enhanced resolution
US6609840B2 (en) 2001-04-05 2003-08-26 Alan Y. Chow Wave length associative addressing system for WDM type light packet steering
JP2003015173A (en) 2001-06-20 2003-01-15 Agilent Technol Inc Device for storing optical signal
US20020196488A1 (en) 2001-06-21 2002-12-26 Myers Michael H. Recirculating frequency-stacking optical memory
US20050084801A1 (en) 2001-07-20 2005-04-21 Idriss El-Hafidi Photonics data storage system using a polypeptide material and method for making same
US6580552B2 (en) 2001-08-27 2003-06-17 Jds Uniphase Corporation Shared pump and serial rare earth doped fiber optical amplifiers
CA2463502C (en) 2001-10-09 2011-09-20 Infinera Corporation Digital optical network architecture
FR2832571B1 (en) * 2001-11-22 2004-04-16 Cit Alcatel COMMON CLOCK OPTICAL FIBER TRANSMISSION SYSTEM
WO2003050581A1 (en) 2001-12-06 2003-06-19 Florida Institute Of Technology Method and apparatus for spatial domain multiplexing in optical fiber communications
WO2003052883A2 (en) 2001-12-14 2003-06-26 Agilent Technologies, Inc. Retro-reflecting device in particular for tunable lasers
US6765678B2 (en) 2002-01-08 2004-07-20 Honeywell International Inc. Relative intensity noise controller with maximum gain at frequencies at or above the bias modulation frequency or with second order feedback for fiber light sources
US6813447B2 (en) 2002-05-23 2004-11-02 Corning Incorporated Recovery of clock pulses of wavelength division multiplexed optical signals
US6850364B2 (en) 2002-06-12 2005-02-01 Finisar Corporation Method and apparatus for an optical multiplexer and demultiplexer with an optical processing loop
JP4798997B2 (en) 2002-08-20 2011-10-19 ファーウェイ マリーン ネットワークス カンパニー リミテッド Method and apparatus for distributing pump energy from a single pump device to optical fibers located in different pairs of fibers
JP2005539338A (en) 2002-09-09 2005-12-22 モスレイ,ニール Spatial light memory
KR100469746B1 (en) * 2002-10-15 2005-02-02 삼성전자주식회사 Self-seeded fabry-perot laser device for wavelength division multiplexing system
US20040151428A1 (en) 2003-01-30 2004-08-05 Nikonov Dmitri E. Amplified optical splitter
US7092133B2 (en) 2003-03-10 2006-08-15 Inphase Technologies, Inc. Polytopic multiplex holography
JP2004294278A (en) 2003-03-27 2004-10-21 Seiko Instruments Inc Chronograph timepiece having chronograph train wheel disposed on chronograph unit
US6917739B2 (en) 2003-03-27 2005-07-12 Agilent Technologies, Inc. Optical cache memory
CA2551483A1 (en) 2003-12-30 2005-07-21 Aprilis, Inc. Replication of data to holographic medium
CA2562826A1 (en) 2004-04-16 2005-11-03 Dce Aprilis, Inc. Calibration of holographic data storage systems using holographic media calibration features
US7177510B2 (en) 2004-08-09 2007-02-13 Fitel Usa Corp. Polarization insensitive microbend fiber gratings and devices using the same
US7110651B2 (en) 2004-08-19 2006-09-19 Lucent Technologies Inc. Optical fiber having enhanced separation of higher-order modes
US7902534B2 (en) 2004-09-28 2011-03-08 Honeywell International Inc. Cavity ring down system having a common input/output port
JP2006215816A (en) 2005-02-03 2006-08-17 Fujitsu Ltd Information processing system and control method of information processing system
JP4847516B2 (en) 2005-03-16 2011-12-28 ゼネラル・エレクトリック・カンパニイ Data storage device and method
FR2884652B1 (en) 2005-04-19 2009-07-10 Femlight Sa DEVICE FOR GENERATING LASER PULSES AMPLIFIED BY OPTICAL FIBERS WITH PHOTONIC LAYERS
US7180447B1 (en) 2005-04-29 2007-02-20 Lockhead Martin Corporation Shared phased array beamformer
US7796487B2 (en) 2005-05-10 2010-09-14 Seagate Technology Llc Optical system for data storage devices
JP4662040B2 (en) * 2005-07-08 2011-03-30 日本電気株式会社 Communication system and synchronization control method thereof
US7609574B2 (en) 2005-09-28 2009-10-27 Intel Corporation Method, apparatus and system for global shared memory using serial optical memory
WO2007064358A2 (en) 2005-09-30 2007-06-07 Virgin Islands Microsystems, Inc. Structures and methods for coupling energy from an electromagnetic wave
US8582972B2 (en) 2006-08-31 2013-11-12 The Trustees Of Columbia University In The City Of New York Systems and methods for storing optical data
JP4991872B2 (en) 2006-11-01 2012-08-01 インフェーズ テクノロジィズ インコーポレイテッド Configuration of monocular holographic data storage system
EP1921614A3 (en) 2006-11-08 2008-06-11 Daewoo Electronics Corporation Optical information processing apparatus and optical information processing method
WO2008121158A1 (en) 2007-04-02 2008-10-09 Inphase Technologies, Inc. Non-ft plane angular filters
US7733930B2 (en) 2007-04-10 2010-06-08 Northrop Grumman Systems Corporation Error control for high-power laser system employing diffractive optical element beam combiner with tilt error control
US7729398B2 (en) 2007-04-10 2010-06-01 Northrop Grumman Systems Corporation Error control for high-power laser system employing diffractive optical element beam combiner
US8036537B2 (en) 2007-06-13 2011-10-11 International Business Machines Corporation Optical pulse amplication apparatus and method
WO2009089619A1 (en) 2008-01-16 2009-07-23 Pyrophotonics Lasers Inc. Method and system for tunable pulsed laser source
US7756169B2 (en) 2008-01-23 2010-07-13 Northrop Grumman Systems Corporation Diffractive method for control of piston error in coherent phased arrays
US7778498B2 (en) 2008-02-12 2010-08-17 Ofs Fitel Llc Systems and techniques for generating cylindrical vector beams
WO2010011899A1 (en) 2008-07-24 2010-01-28 Inphase Technologies, Inc. Holographic storage medium and method for gated diffusion of photoactive monomer
JP5274959B2 (en) 2008-09-25 2013-08-28 株式会社東芝 Optical information recording apparatus and method
US9625878B2 (en) 2009-03-10 2017-04-18 Drexel University Dynamic time multiplexing fabrication of holographic polymer dispersed liquid crystals for increased wavelength sensitivity
US20100269143A1 (en) 2009-04-21 2010-10-21 Irving Rabowsky System and Method for Satellite Enhanced Command, Control, and Surveillance Services Between Network Management Centers and Unmanned Land and Aerial Devices
US20100279604A1 (en) 2009-05-04 2010-11-04 Cisco Technology, Inc. Intersatellite Links
US8417125B2 (en) 2009-06-02 2013-04-09 Bae Systems Information And Electronic Systems Integration Inc. Full-duplex laser communication using single wavelength from an optical transmitter
US20100322058A1 (en) 2009-06-18 2010-12-23 Marvin Hutt Holographic storage system using angle-multiplexing
US11774648B2 (en) 2010-05-07 2023-10-03 Pti Ip Llc Corner-cube irradiation control
GB201008003D0 (en) 2010-05-13 2010-06-30 Oclaro Technology Plc Optical Amplifiers
US9012851B2 (en) 2010-10-14 2015-04-21 Thermo Fisher Scientific (Bremen) Gmbh Optical chamber module assembly
JP2014500977A (en) 2010-10-29 2014-01-16 ヒューレット−パッカード デベロップメント カンパニー エル.ピー. Optical interconnect fabric implemented using star couplers
US8952707B2 (en) 2011-01-21 2015-02-10 Commscope, Inc. Of North Carolina Plug insertion detection circuits and related methods and communications connectors
EP2492773A1 (en) 2011-02-24 2012-08-29 Telefonaktiebolaget L M Ericsson (PUBL) Optical linear feedback circuit
JP5767147B2 (en) * 2011-11-07 2015-08-19 日本電信電話株式会社 Optical amplifier system and optical amplification method
WO2013095981A1 (en) 2011-12-19 2013-06-27 Corning Incorporated Uniform uv efficient light diffusing fiber
CN102571211B (en) * 2012-01-05 2014-09-24 北方通用电子集团有限公司 Optical fiber RF memory circuit
US8532486B2 (en) 2012-02-13 2013-09-10 The United States Of America As Represented By The Secretary Of The Army Method and apparatus for detecting radio-frequency signals using a dispersive fiber optical loop
US8913894B2 (en) 2012-07-13 2014-12-16 Raytheon Company High-bandwidth optical communications relay architecture
JP5557399B2 (en) 2012-08-30 2014-07-23 独立行政法人情報通信研究機構 Spatial division multiplexing apparatus including multi-core fiber and self-homodyne detection method
JP5759437B2 (en) * 2012-09-28 2015-08-05 日本電信電話株式会社 Optical amplifier system and optical amplification method
JP5385444B1 (en) * 2012-10-17 2014-01-08 日本電信電話株式会社 Optical transmission device and optical transmission system
WO2014107696A1 (en) 2013-01-07 2014-07-10 The Trustees Of Columbia University In The City Of New York Systems and methods for multilevel optical storage in tunable photonic crystal cavities
US20140204437A1 (en) 2013-01-23 2014-07-24 Akonia Holographics Llc Dynamic aperture holographic multiplexing
US9288557B2 (en) 2013-05-01 2016-03-15 The United States Of America As Represented By The Secretary Of The Army Method and apparatus for analyzing the spectrum of radio-frequency signals using unamplified fiber optic recirculation loops
KR20140132142A (en) 2013-05-07 2014-11-17 한국전자통신연구원 Transmitter and receiver by using revolution division multiplexing, signal transmitting and receiving thereof
JP6194676B2 (en) 2013-07-29 2017-09-13 富士通株式会社 Antenna device
US9176280B2 (en) 2013-10-21 2015-11-03 Oracle International Corporation Optical reflector based on a directional coupler and a coupled optical loop
US9231698B2 (en) 2014-02-25 2016-01-05 Google Inc. Optical communication terminal
WO2015140703A1 (en) 2014-03-18 2015-09-24 Mario Martinelli Optical multiplexer/demultiplexer device comprising porro prisms
US9331875B2 (en) * 2014-04-04 2016-05-03 Nxgen Partners Ip, Llc System and method for communication using orbital angular momentum with multiple layer overlay modulation
US9413448B2 (en) 2014-08-08 2016-08-09 Nxgen Partners Ip, Llc Systems and methods for focusing beams with mode division multiplexing
US10073417B2 (en) 2014-08-08 2018-09-11 Nxgen Partners Ip, Llc System and method for applying orthogonal limitations to light beams using microelectromechanical systems
WO2016112286A1 (en) 2015-01-09 2016-07-14 Massachusetts Institute Of Technology Link architecture and spacecraft terminal for high rate direct to earth optical communications
US9860013B2 (en) 2015-01-14 2018-01-02 Zte Corporation Time division multiplexed orbital angular momentum based communication
JP6386674B2 (en) 2015-02-03 2018-09-05 クラウド コンステレーション コーポレイション Space-based electronic data storage and transfer network system
US9712239B2 (en) 2015-02-06 2017-07-18 Florida Institute of Technology, Inc. Method and apparatus for multiplexed optical communication system using spatial domain multiplexing (SDM) and orbital angular momentum of photon (OAM) multiplexing with wavelength division multiplexing (WDM)
US10142012B2 (en) 2015-03-11 2018-11-27 The Aerospace Corporation Co-orbiting laser communications relay satellite
US10103799B2 (en) 2015-03-16 2018-10-16 Lockheed Martin Corporation Apparatus and method for increased data rates in underwater communications using orbital angular momentum
US9609402B2 (en) 2015-03-26 2017-03-28 Amazon Technologies, Inc. Optical transmittal storage networks
US10263692B2 (en) 2015-04-10 2019-04-16 Viasat, Inc. Satellite for end-to-end beamforming
JP6483279B2 (en) 2015-04-10 2019-03-13 国立研究開発法人情報通信研究機構 Polarization-insensitive self-homodyne detection receiver for space division multiplexing systems
US9843388B1 (en) 2015-06-08 2017-12-12 Amazon Technologies, Inc. Laser communications
US20170139079A1 (en) 2015-07-23 2017-05-18 Research Foundation Of The City University Of New York Method for altering light interactions with complex structured light
US10891555B2 (en) 2018-08-07 2021-01-12 Nxgen Partners Ip, Llc Universal quantum computer, communication, QKD security and quantum networks using OAM Qu-dits with digital light processing
JP6657700B2 (en) * 2015-09-17 2020-03-04 日本電気株式会社 Interference removal apparatus and interference removal method
US9749080B2 (en) 2015-11-11 2017-08-29 Google Inc. TWDM passive network with extended reach and capacity
US10411811B2 (en) 2015-12-07 2019-09-10 University Of Southern California Systems and techniques for communication using combined orbital angular momentum and multiple-input-multiple-output processing
WO2017112752A1 (en) * 2015-12-22 2017-06-29 California Institute Of Technology Stabilized non-reciprocal fiber-ring brillouin laser source
JP6643674B2 (en) 2016-01-20 2020-02-12 パナソニックIpマネジメント株式会社 Transmission device, reception device, transmission method, and reception method
JP6725996B2 (en) * 2016-02-25 2020-07-22 Kddi株式会社 Optical communication system and optical receiver
AU2017238095B2 (en) * 2016-03-22 2020-03-19 Nkb Properties Management, Llc Data in motion storage system and method
US10312999B2 (en) 2016-03-23 2019-06-04 The Boeing Company High-capacity communications satellite using passive optical beamforming
US9912409B2 (en) 2016-04-12 2018-03-06 Cable Television Laboratories, Inc Fiber communication systems and methods
JP2019516321A (en) 2016-04-28 2019-06-13 クラウド コンステレーション コーポレイション Intermediate satellite network for cross strapping and local network congestion
JP6804636B2 (en) 2016-06-03 2020-12-23 トラスティーズ オブ ボストン ユニヴァーシティ Optical imaging system using vortex fibers for multimode lighting
US9917646B2 (en) 2016-06-15 2018-03-13 Space Systems/Loral, Llc High throughput satellite system with RF service uplink beams and optical feeder downlink beams
US10326526B2 (en) * 2016-09-08 2019-06-18 Nxgen Partners Ip, Llc Method for muxing orthogonal modes using modal correlation matrices
US9812845B1 (en) 2016-11-21 2017-11-07 Oracle International Corporation Fast wavelength-tunable hybrid optical transmitter
US11153002B2 (en) 2016-12-28 2021-10-19 Intel Corporation Orbital angular momentum-based multiplexing with shared antenna elements
US10122456B2 (en) 2017-02-03 2018-11-06 Space Systems/Loral, Llc Ground based subsystems, for inclusion in optical gateway, and that interface with optical networks external to optical gateway
US10735097B2 (en) * 2017-11-21 2020-08-04 Cable Television Laboratories, Inc Systems and methods for full duplex coherent optics
DE102017127813A1 (en) 2017-11-24 2019-05-29 Tesat-Spacecom Gmbh & Co. Kg Beam alignment in unidirectional optical communication systems
US11040786B2 (en) 2018-03-13 2021-06-22 Cloud Constellation Corporation Earth observation satellite information routing system
DE102019200225B4 (en) 2019-01-10 2020-09-03 Deutsches Zentrum für Luft- und Raumfahrt e.V. Structure for receiving an optical data signal, data transmission system and method for adjusting a structure for receiving and / or sending an optical data signal

Patent Citations (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US11243355B2 (en) * 2018-11-05 2022-02-08 Lyteloop Technologies, Llc Systems and methods for building, operating and controlling multiple amplifiers, regenerators and transceivers using shared common components

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