WO2003032071A1 - Wavelength selective optical switch - Google Patents

Wavelength selective optical switch Download PDF

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Publication number
WO2003032071A1
WO2003032071A1 PCT/IL2002/000511 IL0200511W WO03032071A1 WO 2003032071 A1 WO2003032071 A1 WO 2003032071A1 IL 0200511 W IL0200511 W IL 0200511W WO 03032071 A1 WO03032071 A1 WO 03032071A1
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WO
WIPO (PCT)
Prior art keywords
polarization
wavelength
components
switch
pixel
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Ceased
Application number
PCT/IL2002/000511
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English (en)
French (fr)
Inventor
Gil Cohen
Yaron Silberberg
Yossi Corem
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Oclaro New Jersey Inc
Original Assignee
Xtellus Inc
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Filing date
Publication date
Application filed by Xtellus Inc filed Critical Xtellus Inc
Priority to US10/492,484 priority Critical patent/US7468840B2/en
Priority to EP02741144.6A priority patent/EP1436667B1/en
Priority to JP2003534981A priority patent/JP4365680B2/ja
Publication of WO2003032071A1 publication Critical patent/WO2003032071A1/en
Anticipated expiration legal-status Critical
Ceased legal-status Critical Current

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Classifications

    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04QSELECTING
    • H04Q11/00Selecting arrangements for multiplex systems
    • H04Q11/0001Selecting arrangements for multiplex systems using optical switching
    • H04Q11/0005Switch and router aspects
    • 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
    • G02B6/27Optical coupling means with polarisation selective and adjusting means
    • G02B6/2706Optical coupling means with polarisation selective and adjusting means as bulk elements, i.e. free space arrangements external to a light guide, e.g. polarising beam splitters
    • G02B6/2713Optical coupling means with polarisation selective and adjusting means as bulk elements, i.e. free space arrangements external to a light guide, e.g. polarising beam splitters cascade of polarisation selective or adjusting operations
    • G02B6/272Optical coupling means with polarisation selective and adjusting means as bulk elements, i.e. free space arrangements external to a light guide, e.g. polarising beam splitters cascade of polarisation selective or adjusting operations comprising polarisation means for beam splitting and combining
    • 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
    • G02B6/27Optical coupling means with polarisation selective and adjusting means
    • G02B6/2753Optical coupling means with polarisation selective and adjusting means characterised by their function or use, i.e. of the complete device
    • G02B6/2766Manipulating the plane of polarisation from one input polarisation to another output polarisation, e.g. polarisation rotators, linear to circular polarisation converters
    • 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
    • G02B6/293Optical coupling means having data bus means, i.e. plural waveguides interconnected and providing an inherently bidirectional system by mixing and splitting signals with wavelength selective means
    • G02B6/29304Optical coupling means having data bus means, i.e. plural waveguides interconnected and providing an inherently bidirectional system by mixing and splitting signals with wavelength selective means operating by diffraction, e.g. grating
    • G02B6/29305Optical coupling means having data bus means, i.e. plural waveguides interconnected and providing an inherently bidirectional system by mixing and splitting signals with wavelength selective means operating by diffraction, e.g. grating as bulk element, i.e. free space arrangement external to a light guide
    • G02B6/2931Diffractive element operating in reflection
    • 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
    • G02B6/293Optical coupling means having data bus means, i.e. plural waveguides interconnected and providing an inherently bidirectional system by mixing and splitting signals with wavelength selective means
    • G02B6/29304Optical coupling means having data bus means, i.e. plural waveguides interconnected and providing an inherently bidirectional system by mixing and splitting signals with wavelength selective means operating by diffraction, e.g. grating
    • G02B6/29305Optical coupling means having data bus means, i.e. plural waveguides interconnected and providing an inherently bidirectional system by mixing and splitting signals with wavelength selective means operating by diffraction, e.g. grating as bulk element, i.e. free space arrangement external to a light guide
    • G02B6/29311Diffractive element operating in transmission
    • 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
    • G02B6/293Optical coupling means having data bus means, i.e. plural waveguides interconnected and providing an inherently bidirectional system by mixing and splitting signals with wavelength selective means
    • G02B6/29304Optical coupling means having data bus means, i.e. plural waveguides interconnected and providing an inherently bidirectional system by mixing and splitting signals with wavelength selective means operating by diffraction, e.g. grating
    • G02B6/29305Optical coupling means having data bus means, i.e. plural waveguides interconnected and providing an inherently bidirectional system by mixing and splitting signals with wavelength selective means operating by diffraction, e.g. grating as bulk element, i.e. free space arrangement external to a light guide
    • G02B6/29313Optical coupling means having data bus means, i.e. plural waveguides interconnected and providing an inherently bidirectional system by mixing and splitting signals with wavelength selective means operating by diffraction, e.g. grating as bulk element, i.e. free space arrangement external to a light guide characterised by means for controlling the position or direction of light incident to or leaving the diffractive element, e.g. for varying the wavelength response
    • 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
    • G02B6/293Optical coupling means having data bus means, i.e. plural waveguides interconnected and providing an inherently bidirectional system by mixing and splitting signals with wavelength selective means
    • G02B6/29379Optical coupling means having data bus means, i.e. plural waveguides interconnected and providing an inherently bidirectional system by mixing and splitting signals with wavelength selective means characterised by the function or use of the complete device
    • G02B6/2938Optical coupling means having data bus means, i.e. plural waveguides interconnected and providing an inherently bidirectional system by mixing and splitting signals with wavelength selective means characterised by the function or use of the complete device for multiplexing or demultiplexing, i.e. combining or separating wavelengths, e.g. 1xN, NxM
    • 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
    • G02B6/293Optical coupling means having data bus means, i.e. plural waveguides interconnected and providing an inherently bidirectional system by mixing and splitting signals with wavelength selective means
    • G02B6/29379Optical coupling means having data bus means, i.e. plural waveguides interconnected and providing an inherently bidirectional system by mixing and splitting signals with wavelength selective means characterised by the function or use of the complete device
    • G02B6/29395Optical coupling means having data bus means, i.e. plural waveguides interconnected and providing an inherently bidirectional system by mixing and splitting signals with wavelength selective means characterised by the function or use of the complete device configurable, e.g. tunable or reconfigurable
    • GPHYSICS
    • G02OPTICS
    • G02FOPTICAL DEVICES OR ARRANGEMENTS FOR THE CONTROL OF LIGHT BY MODIFICATION OF THE OPTICAL PROPERTIES OF THE MEDIA OF THE ELEMENTS INVOLVED THEREIN; NON-LINEAR OPTICS; FREQUENCY-CHANGING OF LIGHT; OPTICAL LOGIC ELEMENTS; OPTICAL ANALOGUE/DIGITAL CONVERTERS
    • G02F1/00Devices or arrangements for the control of the intensity, colour, phase, polarisation or direction of light arriving from an independent light source, e.g. switching, gating or modulating; Non-linear optics
    • G02F1/29Devices or arrangements for the control of the intensity, colour, phase, polarisation or direction of light arriving from an independent light source, e.g. switching, gating or modulating; Non-linear optics for the control of the position or the direction of light beams, i.e. deflection
    • G02F1/31Digital deflection, i.e. optical switching
    • GPHYSICS
    • G02OPTICS
    • G02FOPTICAL DEVICES OR ARRANGEMENTS FOR THE CONTROL OF LIGHT BY MODIFICATION OF THE OPTICAL PROPERTIES OF THE MEDIA OF THE ELEMENTS INVOLVED THEREIN; NON-LINEAR OPTICS; FREQUENCY-CHANGING OF LIGHT; OPTICAL LOGIC ELEMENTS; OPTICAL ANALOGUE/DIGITAL CONVERTERS
    • G02F1/00Devices or arrangements for the control of the intensity, colour, phase, polarisation or direction of light arriving from an independent light source, e.g. switching, gating or modulating; Non-linear optics
    • G02F1/01Devices or arrangements for the control of the intensity, colour, phase, polarisation or direction of light arriving from an independent light source, e.g. switching, gating or modulating; Non-linear optics for the control of the intensity, phase, polarisation or colour 
    • G02F1/13Devices or arrangements for the control of the intensity, colour, phase, polarisation or direction of light arriving from an independent light source, e.g. switching, gating or modulating; Non-linear optics for the control of the intensity, phase, polarisation or colour  based on liquid crystals, e.g. single liquid crystal display cells
    • G02F1/1326Liquid crystal optical waveguides or liquid crystal cells specially adapted for gating or modulating between optical waveguides
    • GPHYSICS
    • G02OPTICS
    • G02FOPTICAL DEVICES OR ARRANGEMENTS FOR THE CONTROL OF LIGHT BY MODIFICATION OF THE OPTICAL PROPERTIES OF THE MEDIA OF THE ELEMENTS INVOLVED THEREIN; NON-LINEAR OPTICS; FREQUENCY-CHANGING OF LIGHT; OPTICAL LOGIC ELEMENTS; OPTICAL ANALOGUE/DIGITAL CONVERTERS
    • G02F2203/00Function characteristic
    • G02F2203/05Function characteristic wavelength dependent
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04QSELECTING
    • H04Q11/00Selecting arrangements for multiplex systems
    • H04Q11/0001Selecting arrangements for multiplex systems using optical switching
    • H04Q11/0005Switch and router aspects
    • H04Q2011/0007Construction
    • H04Q2011/0024Construction using space switching
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04QSELECTING
    • H04Q11/00Selecting arrangements for multiplex systems
    • H04Q11/0001Selecting arrangements for multiplex systems using optical switching
    • H04Q11/0005Switch and router aspects
    • H04Q2011/0007Construction
    • H04Q2011/0035Construction using miscellaneous components, e.g. circulator, polarisation, acousto/thermo optical

Definitions

  • the present invention relates to the field of devices for the switching of optical signals, according to the wavelength of the light bearing the information, by means of spatially selective polarization rotation of the light, especially for use in optical communication networks.
  • a wavelength dispersive element (not shown), a polarization dispersive element to displace the beam polarizations, such as a birefringent crystal, a half-wave plate element, a focusing element, another polarization dispersive element such as another birefringent crystal, and a segmented liquid crystal polarization modulator.
  • a polarization dispersive element to displace the beam polarizations such as a birefringent crystal, a half-wave plate element, a focusing element, another polarization dispersive element such as another birefringent crystal, and a segmented liquid crystal polarization modulator.
  • a polarization dispersive element to displace the beam polarizations such as a birefringent crystal, a half-wave plate element, a focusing element, another polarization dispersive element such as another birefringent crystal, and a segmented liquid crystal polarization modulator.
  • the input elements include a polarization alignment component (not shown) to provide a specific polarization direction to the input beam, a wavelength dispersive element, a focussing element, a polarization displacement element such as a birefringent crystal, and a segmented liquid crystal polarization modulator.
  • a polarization alignment component (not shown) to provide a specific polarization direction to the input beam
  • a wavelength dispersive element to provide a specific polarization direction to the input beam
  • a focussing element to provide a specific polarization direction to the input beam
  • a polarization displacement element such as a birefringent crystal
  • a segmented liquid crystal polarization modulator segmented liquid crystal polarization modulator
  • the present invention seeks to provide a new wavelength selective optical switching device, which is simple in construction, and uses a small number of component parts, thus overcoming some of the disadvantages of previously available switches.
  • a wavelength selective switch wherein an input optical signal is spatially wavelength-dispersed and polarization-split in two angularly oriented planes, preferably perpendicular, planes.
  • the wavelength dispersion is preferably performed by a diffraction grating, and the polarization-splitting by a polarizing beam splitter.
  • a polarization rotation device such as a liquid crystal polarization modulator, pixelated along the wavelength dispersive direction such that each pixel operates on a separate wavelength channel, is operative to rotate the polarization of the light signal passing through each pixel, according to the control voltage applied to the pixel.
  • the polarization modulated signals are then wavelength-recombined and polarization-recombined by means of similar dispersion and polarization combining components as were used to respectively disperse and split the input signals.
  • the direction of the resulting signal output is determined by whether the polarization of the particular wavelength channel was rotated by the polarization modulator pixel, or not.
  • a fast, wavelength dependent, optical switch is provided, capable of use in WDM switching applications.
  • the use of a reflecting surface at the plane of symmetry of the switch, after the polarization modulator enables the number of components in the switch to be substantially reduced, to almost half that of the first embodiment.
  • a wavelength dependent switch comprising a polarization splitting element receiving an input beam including a plurality of wavelengths, and operative to spatially divide the input beam into separate polarization components, a wavelength dispersive element receiving the polarization-divided components of the input beam, and operative to spatially disperse each of the polarization-divided components of the beam into its wavelength components in a plane disposed at an angle to the plane in which the polarization components are divided, a polarization modulating element, pixelated along the direction of the wavelength dispersion such that each pixel is associated with a separate wavelength, each pixel of the polarization modulating element being operative to rotate the direction of the polarization of a beam passing through the pixel according to a control signal applied to the pixel, and a reflecting surface operative to reflect the beam after polarization modulation back through the wavelength dispersive element and the polarization splitting element, such that the beam outputs in a direction according to the
  • a wavelength dependent switch including a first polarization splitting element receiving an.' input beam including a plurality of wavelengths, and operative to spatially divide the input beam into separate polarization components, a first wavelength dispersive element receiving the polarization-divided components of the input beam, and operative to spatially disperse each of the polarization-divided components of the beam into its wavelength components in a plane disposed at an angle to the plane in which the polarization components are divided, a polarization modulating element, pixelated along the direction of the wavelength dispersion such that each pixel is associated with a separate wavelength, each pixel of the polarization modulating element being operative to rotate the direction of the polarization of a beam passing through the pixel according to a control signal applied to the pixel, a second wavelength dispersive element receiving the polarization-modulated components of the beam, and operative to combine the wavelength components after passing through their wavelength associated pixels, into a single multichannel
  • a wavelength dependent switch comprising sequentially:
  • a polarization beam splitter having a first and second port, for receiving an input beam comprising at least two wavelength components, and operative to spatially split the input beam into beams of separate polarization components
  • a dispersive element receiving the beams of separate polarization components, and operative to spatially disperse the wavelength components of each of the beams in a dispersion plane disposed at an angle to the plane in which the polarization components are split
  • each pixel of the polarization modulating element being operative to rotate the direction of the polarization of light passing through the pixel according to a control signal applied to the pixel
  • a reflecting surface operative to reflect the light after polarization modulation, back through the dispersive element and the polarization beam splitter, such that each wavelength component of the light is directed to one of the two ports according to the control signal applied to the pixel associated with the wavelength.
  • the polarization modulating element may preferably be a liquid crystal element.
  • the angle may be such that the dispersion plane is essentially orthogonal to the plane in which the polarization components are split.
  • the separate polarization components may be two orthogonal components.
  • a switch as described above, and also comprising circulators at each of the first and second ports, such that the switch is operative to switch a wavelength component of a signal input through either of the circulators such that it outputs either of the circulators according to the control signal applied to the pixel associated with the wavelength.
  • a wavelength dependent switch comprising: (i) a polarization beam splitter having a first input port, for receiving an input beam having at least two wavelength components, and operative to spatially split the input beam into beams of separate polarization components, (ii) a first dispersive element receiving the beams of separate polarization components, and operative to spatially disperse the wavelength components of each of the beams in a dispersion plane disposed at an angle to the plane in which the polarization components are split,
  • each pixel of the polarization modulating element being operative to rotate the direction of the polarization of light passing through the pixel according to a control signal applied to the pixel
  • a second dispersive element receiving the light, and operative to combine the separate wavelength components of each of the beams into multi-wavelength beams
  • a polarization beam combiner having two output ports, for receiving each of the multi-wavelength beams, and operative to combine the polarization components such that each wavelength component is directed to one of the two output ports according to the control signal applied to the pixel associated with the wavelength.
  • the polarization modulating element may preferably be a liquid crystal element.
  • the angle may be such that the dispersion plane is essentially orthogonal to the plane in which the polarization components are split.
  • the separate polarization components may be two orthogonal components.
  • a wavelength dependent switch as described above, and also comprising a second input port disposed essentially orthogonal to the first input port, such that the switch is operative to switch a wavelength component of a signal input to either of the input ports, to either of the output ports, according to the control signal applied to the pixel associated with the wavelength.
  • Figs.1 A and IB schematically illustrate different views of a wavelength selective optical switch, constructed and operative according to a first preferred embodiment of the present invention.
  • Fig. 1 A is a view of the device from the polarization splitting plane
  • Fig. IB is a view of the same device from the wavelength dispersion plane, orthogonal to the polarization splitting plane;
  • Figs. IC and ID are schematic illustrations of simplifying adaptations of the 2 x 2 switch shown in Figs. 1A and IB, enabling its use as a 1 x 2 switch, or as a 2 x 1 switch when used in the reverse direction;
  • Fig. IE illustrates schematically yet another embodiment of a wavelength selective optical switch, according to a further preferred embodiment of the present invention, in which polarization dependent loss is compensated for either position of the switch;
  • Figs. 2 A and 2B schematically illustrate a wavelength selective optical switch, constructed and operative according to a further preferred embodiment of the present invention, using a reflective surface to reduce the size and complexity of the switch;
  • Fig. 3 schematically illustrates the use of dual fiber collimators as input/output devices in the embodiment shown in Figs. 2A and 2B;
  • Fig. 4A is a schematic illustration of a stacked, multiple channel, wavelength selective switch, according to yet another preferred embodiment of the present invention, using common dispersive elements
  • Fig. 4B is a schematic illustration of a multiply parallel wavelength selective switch with multiple inputs and outputs, in which the multiple input and output fibers use the same optical elements
  • Fig. 5 is a schematic illustration of a stacked, multiple channel, wavelength selective switch, according to yet another preferred embodiment of the present invention, similar to that shown in Fig. 4A, but using also common focussing lenses and a common liquid crystal element;
  • Fig. 6 is a schematic illustration of a stacked, multiple channel, reflective wavelength selective switch, according to yet another preferred embodiment of the present invention, using a common diffraction grating, focussing lens and liquid crystal element;
  • Fig. 7 is a schematic illustration of a reflective wavelength selective switch, similar to that shown in Fig. 6, but using also a common focussing lens for both channels.
  • Figs. 1A and IB illustrate schematically different views of a wavelength selective optical switch, constructed and operative according to a first preferred embodiment of the present invention.
  • Fig. 1 A is a view of the device from one plane, known as the polarization splitting plane
  • Fig. IB is a view of the same device as seen from a plane preferably orthogonal to the first and known as the wavelength dispersion plane.
  • the operation of the wavelength selective optical switch can be understood by reference simultaneously to the signal paths shown in Figs. 1A and IB.
  • An input optical signal 10 is input into a polarization beam splitter (PBS) 14, shown in Fig. 1A as a split prism PBS, though it is to be understood that other preferred types of PBS may also be used for this function.
  • PBS polarization beam splitter
  • the PBS is so orientated that it preferably splits the input signal into its two orthogonal polarization directions, marked P y and P z , where P y is in the plane of the paper, and P z is out of the plane of the paper in the embodiment shown.
  • the position of the axes x, y, and z are defined in Fig. 1A.
  • the two polarization components of the signal also commonly known as the;?
  • a dispersive element such as a diffraction grating 16 in the preferred embodiment shown.
  • the grating is operative to disperse the different wavelengths ⁇ ⁇ 2 , ⁇ 3 , .... ⁇ n into different directions, according to their wavelength.
  • the grating is aligned such that the wavelength dispersion direction, shown in the plane of Fig. IB, is preferably perpendicular to the polarization splitting direction, shown in the plane of Fig. 1A.
  • the optical signal is thus now wavelength-dispersed and polarization-split in two different planes, preferably orthogonal to each other. Though the gratings in the embodiment shown in Figs.
  • the gratings either one or both, could equally be reflective gratings.
  • the single grating could be a reflective grating.
  • the dispersed components of the signal are then imaged by means of a lens 18 located at a distance equal to its effective focal length from the diffraction grating onto a pixelated polarization rotation element, 20, such as a pixelated liquid crystal device, which is divided up into pixels, 24, 26, 28.... one for each wavelength channel to be directed by the switch.
  • a pixelated polarization rotation element 20, such as a pixelated liquid crystal device, which is divided up into pixels, 24, 26, 28.... one for each wavelength channel to be directed by the switch.
  • the light from each dispersed wavelength range is imaged onto a separate pixel of the device, as is seen in Fig. IB.
  • Fig. IB For the sake of clarity, only two dispersed wavelengths are shown in Fig. IB, but it is to be understood that there can be as many wavelength channels as there are pixels.
  • Fig. IB For the sake of clarity, only two dispersed wavelengths are shown in Fig. IB, but it is to be understood that there can be
  • 1A shows a view of the switch from the side, and hence only pixel 24 is shown, carrying the signals of wavelength ⁇ t .
  • Components of the signal having polarization in the P z direction and in the P y direction both pass through pixel 24, but laterally displaced from each other.
  • the pixels are switched by means of control voltages N applied through an array of transparent electrodes on the liquid crystal surfaces, as is known in the art of passive matrix liquid crystal arrays.
  • the liquid crystal array may be an active matrix type, with individual thin film transistors providing the drive current for each individual pixel.
  • the light signals After passing through the liquid crystal device 20, the light signals are imaged, preferably by means of a second focusing lens 30, onto another dispersive grating 32, similar in characteristics to the first grating 16.
  • the polarization rotation element is preferably located at the back focal plane of the focusing lens 18, and at the front focal plane of the lens 30, such that the overall assembly has a 4-f configuration, for optimum optical performance.
  • Grating 32 is operative to recombine the different wavelengths ⁇ ⁇ 2 , ⁇ 3 , .... ⁇ ,, coming from their respective wavelength-dispersed directions, into a single beam path 34 in the wavelength-dispersed plane, though still spatially split into its two polarization components in the polarization-displaced plane.
  • These polarization components are then input to a polarization beam combiner (PBC) 36, where the polarization components are recombined to form an output signal 42, which can be collimated and input into a fiber 44 for onward transmission after switching.
  • PBC polarization beam combiner
  • the switch is operated by activation of the pixels of the liquid crystal device.
  • Application of the required control voltage V to a pixel causes the polarization passing therethrough to rotate, while inactivation of the liquid crystal pixel allows the signal to pass through with its polarization unchanged.
  • the relevant pixel 24 of the liquid crystal device 20 for wavelength channel ⁇ ! is not activated, the polarizations P y and P z , are unrotated, and the reconstituted signal outputs from the polarization beam combiner 36 into fiber 44.
  • the output fiber 44 is not shown in Fig. IB, as it is located out of the plane of the drawing.
  • the output beam 42 is directed orthogonally to that of the input beam 10, even though the polarizations of the two components of the beam have not been changed by the liquid crystal. This is a result of the focusing of the beams by means of two lenses through the liquid crystal device 20, causing the two laterally displaced polarization components of the beam to cross over and thus to change their mutual positions, such that the two components behave as if their polarizations had been rotated by the liquid crystal.
  • the polarizations P y and P z are rotated such that the polarization P y becomes P z and the polarization P z becomes P y .
  • the resultant signal exits in the direction 38 parallel to the entry direction, and inputs a second output fiber 40.
  • the above-described optical arrangement therefore behaves as a 1 x 2 optical switch device which can direct an input signal 10 of wavelength ⁇ i into one of two output fibers 40, 44, by means of switching a liquid crystal pixel 24. It is understood that by reversing the direction of operation of the switch, it operates as a 2 x 1 switch, with inputs on either of fibers 40 and 44 being directed to the input fiber 12 according to the setting of the liquid crystal pixels.
  • Each wavelength channel shown in Fig. IB has its own liquid crystal pixel, the switching of which causes the light of that wavelength to input into one or other of the output fibers.
  • the switch is thus able to direct wavelength separated packets of optical information into different paths, according to their wavelengths, by means of a switching routine of control voltages applied to the various wavelength designated pixels of the liquid crystal device.
  • the novel construction and operation of the switch of the present invention makes it essentially polarization independent, besides any residual polarization dependent loss which there may be in the grating or in the PBS.
  • This feature is important for use in fiber optical systems, since, as is known, the polarization of a signal transmitted down an optical fiber is generally randomized.
  • the reason for this polarization independence is that at the input 10 to the PBS, independently of the polarization direction of the input signal, any input signal can be split into two orthogonal components having polarization directions parallel to P y and P z relative to the orientation of the PBS, and each component is separately switched or not switched to output 42 or 38, according to the state of the liquid crystal pixel for that wavelength.
  • a second input fiber 50 is disposed at the orthogonal input port of the polarization beam splitter 14.
  • the input signal 48 from the second input fiber 50 after passing through the polarization beam splitter 14, has polarizations reversed from those shown in Fig. 1A.
  • the upper path shown in Fig. 1A has P y polarization direction, while the lower path has a P z polarization. Therefore, on passage through the liquid crystal device, oppositely to the effect on the input signal from fiber 12, activation of a pixel sends the input signal from fiber 50 out to fiber 44, and non- activation directs it to fiber 40.
  • This preferred embodiment is therefore operative as a 2 x 2 optical switching network.
  • Switches can be constructed by cascading such switches.
  • 2 x 1, 1 x 2, or even l x l switches can also be implemented, the last mentioned being useful as a channel blocker.
  • a half wave plate 22 can be inserted close to the liquid crystal device 24 in order to minimize the polarization dependent loss (PDL).
  • PDL polarization dependent loss
  • Such a half wave plate rotates through 90° the polarization of light passing through it, such that in the example shown in Fig. 1A, polarization P y is converted to P z and vice versa. Therefore, any difference in polarization dependent loss suffered by the incoming light during transit through the left hand side of the switch system, i.e. before impinging on the half wave plate, will be compensated during passage in the right hand side of the switch system, since the polarization directions of the orthogonally polarized components are interchanged and the switch is approximately right-left symmetrical.
  • Figs. IC and ID schematically illustrate wavelength selective optical switches, constructed and operative according to two further preferred embodiments of the present invention.
  • the switches shown are simplified embodiments of those shown in Figs. 1A and IB, for use as a 1 x 2 or as a 2 x 1 switch.
  • the multi-wavelength input signal 10 is applied through a single input fiber 12, and is split into its orthogonal polarization components P y and P z by means of the input PBS 14.
  • a half wave plate 15 is located at one output of the PBS, and is operative, in the embodiment shown, to rotate the P y component into the P z direction.
  • Both of the polarization-split channels thus now have the same polarization direction, P z in the embodiment shown.
  • These components are then both passed through the dispersion grating 16, where they are wavelength dispersed in the dispersion plane (not shown) as shown in the embodiment of Figs. 1A and IB.
  • both signals now have the same polarization direction, and this enables the use of a high efficiency grating 16, thereby providing the switching array with a significantly lower insertion loss than that shown in the previous embodiment of Figs. 1A and IB.
  • one of the polarization-split channels has a further half wave plate 33 in its path, operative in this embodiment to rotate the P z component back into a P y component, so that the output PBS 36 can direct each signal to its determined output, along path 38 or 42, depending on the state of the relevant pixel of the liquid crystal device.
  • Fig. ID is similar to that shown in Fig. IC, in that the switch is constructed such that the liquid crystal polarization rotating element operates on parallel polarization signals.
  • the input signal 12 is split into its orthogonal polarization components, one of which is rotated to bring both components parallel, preferably by means of a birefringent crystal such as YV0 4 13 with a half wave plate 17 on one half of its output port, as is known in the art.
  • a birefringent crystal such as YV0 4 13 with a half wave plate 17 on one half of its output port, as is known in the art.
  • Such a component, in an integrated form is available commercially from several companies, including JDSU-Casix Corp., of Fuzhou, China, and is known by Casix as a C-polarizer.
  • Fig. IE illustrates schematically yet another embodiment of a wavelength selective optical switch, according to a further preferred embodiment of the present invention.
  • the embodiment shown in Fig. IE overcomes a drawback in the use of a single half wave plate 22 close to the liquid crystal element to eliminate polarization dependent losses (PDL), as shown in the embodiment of Fig. 1A.
  • PDL polarization dependent losses
  • the scheme of Fig. 1A PDL is effectively compensated for so long as the liquid crystal is unswitched.
  • the operative pixel of the liquid crystal is switched, another 180° phase shift is introduced into the optical path, thereby nullifying the effect of the 180° phase shift introduced by the half wave plate.
  • the PDL is therefore no longer compensated when the switch is activated.
  • a small half wave plate 41 is inserted into the path of the upper polarization-split beam exiting the input PBS 14, such that in the example shown, its polarization is rotated from P z to P y . Both polarization dispersion channels then have the same polarization direction, P y , and therefore traverse the switch path without engendering essentially different levels of PDL.
  • a similar half wave plate 43 is inserted into the same channel as that having the half wave plate at the input, thereby reverting the polarization direction back to P z , for outputting as in the original scheme of Fig. 1A.
  • FIG. 2A is a view of the device from the polarization split plane
  • Fig. 2B is a view of the same device from the wavelength dispersion plane.
  • a reflecting surface 60 is added after the liquid crystal device 20, so that the polarized components of the beam are returned back along their incident path.
  • This embodiment is thus similar in construction to the embodiment of Figs. 1A and IB, except that use is made of the symmetry of the device on either side of the polarization rotating component, in order to simplify construction, and to reduce even further the number of components used.
  • the reflecting surface 60 in the embodiment of Figs. 2A and 2B is shown as a separate device, according to a further embodiment, the reflecting surface can be applied to the back side of the liquid crystal device 20.
  • the other components in the embodiment of Figs. 2A and 2B are labeled with the same characters as in Figs. 1A and IB, and in general, for the incident signals, they have essentially identical functions to those in Figs. 1A and IB.
  • these components after passage through the liquid crystal device 20 and after reflection from the reflective surface 60 of Figs. 2A and 2B, these components have the equivalent functions to those of the output signals of Figs. 1A and IB, after transmission through the liquid crystal device 20 of Figs.
  • the diffraction grating 16 is operative both to wavelength disperse the input signals, and to wavelength combine the output signals.
  • the single imaging lens 18 both images the input signals from the grating 16 onto the plane of the liquid crystal element 20, and confocally images the output signals from the plane of the liquid crystal element onto the grating 16.
  • the polarization beam splitter 14 of the input signals also acts as a polarization beam combiner for the output signals.
  • both input and output fibers must be connected to this component, and a means provided for separating the input from the output signals.
  • This is preferably achieved by the addition of circulators 54 and 56 at the ports of the polarization beam splitter/combiner 14 in the embodiment shown in Figs. 2A and 2B.
  • the circulator 56 is not shown in Fig. 2B, as it lies perpendicular to the plane of the drawing, and beneath the polarization beam splitter/combiner 14.
  • the signal having the wavelength which it is desired to be switched is input from fiber 12 to port A of circulator 54. Since the direction of propagation of the circulator shown in the preferred embodiment of Fig. 2 A is anti-clockwise, the signal exits the circulator at the port B fiber, is collimated by a lens at the end of the fiber and enters the polarization beam splitter/combiner 14.
  • the signal returns after reflection and polarization recombination, to port B of circulator 56, which then outputs the signal via port C to output fiber 58.
  • the pixel 24 associated with the wavelength channel ⁇ i is activated and generates a phase difference of ⁇ /2, the signal has its polarization components reversed, and consequently, after recombination in the polarization beam splitter/combiner 14, is focused by the collimation lens to output to port B of circulator 54, and from there to port C and out to fiber 52.
  • an input signal on fiber 12 having a wavelength ⁇ i can be switched between output fibers 58 and 52, according to the setting of the control voltage of pixel 24.
  • any other wavelength within the range of the dispersive element 16 can be switched by means of a control voltage applied to the appropriate pixel 24, 26, 28, of the liquid crystal device 20.
  • a second input fiber 50 is disposed at the input port A of the circulator 56, and inputs its signal from port B to the polarization beam splitter/recombiner 14. On return from its round trip through the switch, the signal is directed either to fiber 52 if the relevant pixel is not activated, or to fiber 58 if the pixel is activated.
  • This embodiment like that of Fig. 1 A and IB, can also therefore be used as a 2 x 2 optical switching network.
  • the input and output signals can be separated by using dual fiber collimators instead of the circulators shown in the embodiment of Figs. 2A and 2B.
  • dual fiber collimators instead of the circulators shown in the embodiment of Figs. 2A and 2B.
  • the first channel of the 2 x 2 switching network has a dual fiber collimator 62, with input fiber 66 and output fiber 67.
  • the second channel of the 2 x 2 switching network has a dual beam collimator 64, with input fiber 68 and output fiber 69. Operation of the switch is otherwise similar to that using circulators, as shown in Figs. 2 A and 2B.
  • a quarter wave plate 23 may added in juxtaposition to the polarization modulating element 24. Since the beam makes two traverses through this plate, the effect is that of a half wave plate 22, as described in relation to Figs. 1A and IB.
  • any other polarization rotating element which rotates the polarization direction by 90° such as a Faraday rotator, can be used for this purpose instead of a quarter wave plate.
  • FIG. 4A is a schematic illustration of a multiple channel wavelength selective switch module, according to yet another preferred embodiment of the present invention.
  • the embodiment shown in Fig. 4 is similar to that shown in Figs. 1A and IB except that a pair of 2 x 2 switches are stacked one on top of the other, and preferably utilize a common dispersive element 70 but separate focussing lenses, 72, 73 74, 75 and a common wavelength combining element 78.
  • Each switch utilizes its own liquid crystal array 76, 77, in order to enable independent operation for the two switches.
  • a single liquid crystal array may be used, as indicated by the dotted lines joining what would then be the two "parts" 76, 77 of the single element, with the pixels of separate rows being used to control the switching of each stacked switch.
  • Fig. 4B is a schematic illustration of another preferred embodiment of a wavelength selective switch module of the present invention.
  • the switch array shown in Fig. 4B is similar to that shown in Fig. 1 A, or in half of the multiple channel embodiment of fig. 4A except that at each input and output, instead of a single fiber collimator, a multiple fiber collimator is used.
  • triple fiber collimators 79 are shown, which are constructed by having three fiber in the same ferrule in front of the collimating lens of the collimator.
  • Such an embodiment enables the switch to work as a multiply parallel, wavelength selective switch, which is useful for providing switching capability with channel redundancy, as is known in the art.
  • Fig. 5 is a schematic illustration of another multiple channel wavelength selective switch, according to a further preferred embodiment of the present invention.
  • This switch differs from that shown in Fig. 4A in that common focussing lenses 80, 82 are used, as well as a single liquid crystal array 84 which serves all of the wavelength channels in both separate switches. This allows even greater economy of component use in the switch.
  • Stacking of switches can also be performed for the reflective wavelength selective switch embodiments shown in Figs. 2A and 2B.
  • One preferred example of such a stacked switch module is shown in Fig. 6, in which some of the operative elements of the switches, namely the grating 90 and the reflective liquid crystal element 94, are common.
  • Fig. 6 In order to maintain planar geometry at the reflective liquid crystal plane, separate focusing lenses 92, 93, are required.
  • Individual polarization beam splitters 96, 98 are used, as in the transmissive embodiments, to input and output the signals.
  • the reflective switch array shown in Fig.
  • the input and output beams of each channel are separated by means of dual fiber collimators 95, as shown in Fig. 3, to illustrate the difference of this preferred aspect of these embodiments from that shown in Figs. 2A and 2B where circulators are used. It is to be understood that such a stacked switch module can also be constructed with less of its components common, similar to the embodiment shown in Fig. 4A.
  • Fig. 7 is a schematic illustration of another reflective multiple channel, wavelength selective switch, according to a further preferred embodiment of the present invention.
  • This switch differs from that shown in Fig. 6 in that the focussing lens 102 too is common to both channels.
  • the reflective surface 106 associated with the liquid crystal element 104 is preferably constructed with a concave profile, with a radius of curvature equal to the focal length of the lens 102, such that any beam focussed by the lens onto the reflective surface is returned along its incident path.
  • the PBS's 96, 98 operating as the incident and receiving units must preferably be aligned at an angle such that after refraction through the lens 102, the incident beams are directed at the correct angle onto the concave reflective surface 106, and impinge thereon at spatially different positions. If the PBS's were to be aligned axially, the beams would be focussed at essentially the same points and could not be independently controlled by the liquid crystal element 104.
  • the grating 100 is shown as a transmissive grating, with the PBS's 96, 98, located in the positions shown in Fig. 7.
  • a reflective grating may be used, in which case the PBS's are located such that the input and output beams of each channel are directed along the directions indicated by the arrows 108, 109.
  • the pixels are described as being activated when a voltage is applied to them to rotate the polarization direction, or un-activated when no voltage is applied, and the polarization of traversing light is unaffected.
  • this description is an idealized description since in general, even without the application of any drive voltage, there will be some polarization rotation of the traversing light signals because of basic birefringence of the liquid crystal material.
  • the unactivated state is understood to mean that state obtained when a polarization rotation of 2n ⁇ is obtained, where n is an integer not including zero, even if that state requires the application of a voltage to the element in question.
  • the "voltage" required to activate that element is then the difference in voltage required between the unactivated and the activated state.
  • the voltage required to switch an element may be a function of the wavelength of the light being switched, and the switch controller is thus preferably programmed to supply the correct switching voltage to each pixel in accordance with the wavelength of the light traversing that pixel.
  • the light beams are shown having a finite width only within the dispersive bounds of the switch, in order to illustrate the focusing effect through the liquid crystal element.
  • the beams are delineated by single lines only down the center of the beam, for reasons of clarity. It is thus not meant to be understood from the drawings that the beam width changes in passage through the dispersive elements.
  • wavelength selective switch has been described using a liquid crystal element as the polarization rotating element, it is understood that the invention is equally operable using any other suitable type of controlled polarization rotating element known in the art.
  • a grating has been used as the wavelength dispersing element, it is understood that the invention is equally operable using any other type of wavelength dispersing element.
  • fibers have been shown to represent the input and output means for the optical signals, these being the most common medium for transferring optical information, it is understood that the invention is not meant to be limited to this type of input and output means.

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