WO2002003514A2 - Power and wavelength control of sampled grating distributed bragg reflector lasers - Google Patents

Power and wavelength control of sampled grating distributed bragg reflector lasers Download PDF

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Publication number
WO2002003514A2
WO2002003514A2 PCT/US2001/020725 US0120725W WO0203514A2 WO 2002003514 A2 WO2002003514 A2 WO 2002003514A2 US 0120725 W US0120725 W US 0120725W WO 0203514 A2 WO0203514 A2 WO 0203514A2
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laser
input
current
wavelength
article
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PCT/US2001/020725
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French (fr)
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WO2002003514A3 (en
Inventor
Paul F. Crowder
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Agility Communications, Inc.
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Priority to AU2001273072A priority Critical patent/AU2001273072A1/en
Publication of WO2002003514A2 publication Critical patent/WO2002003514A2/en
Publication of WO2002003514A3 publication Critical patent/WO2002003514A3/en

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    • BPERFORMING OPERATIONS; TRANSPORTING
    • B82NANOTECHNOLOGY
    • B82YSPECIFIC USES OR APPLICATIONS OF NANOSTRUCTURES; MEASUREMENT OR ANALYSIS OF NANOSTRUCTURES; MANUFACTURE OR TREATMENT OF NANOSTRUCTURES
    • B82Y20/00Nanooptics, e.g. quantum optics or photonic crystals
    • 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
    • H01S5/00Semiconductor lasers
    • H01S5/06Arrangements for controlling the laser output parameters, e.g. by operating on the active medium
    • H01S5/062Arrangements for controlling the laser output parameters, e.g. by operating on the active medium by varying the potential of the electrodes
    • H01S5/0625Arrangements for controlling the laser output parameters, e.g. by operating on the active medium by varying the potential of the electrodes in multi-section lasers
    • H01S5/06255Controlling the frequency of the radiation
    • H01S5/06256Controlling the frequency of the radiation with DBR-structure
    • 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
    • H01S5/00Semiconductor lasers
    • H01S5/06Arrangements for controlling the laser output parameters, e.g. by operating on the active medium
    • H01S5/068Stabilisation of laser output parameters
    • H01S5/06808Stabilisation of laser output parameters by monitoring the electrical laser parameters, e.g. voltage or current
    • 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
    • H01S5/00Semiconductor lasers
    • H01S5/06Arrangements for controlling the laser output parameters, e.g. by operating on the active medium
    • H01S5/068Stabilisation of laser output parameters
    • H01S5/0683Stabilisation of laser output parameters by monitoring the optical output parameters
    • H01S5/0687Stabilising the frequency of the laser
    • 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
    • H01S5/00Semiconductor lasers
    • H01S5/10Construction or shape of the optical resonator, e.g. extended or external cavity, coupled cavities, bent-guide, varying width, thickness or composition of the active region
    • H01S5/12Construction or shape of the optical resonator, e.g. extended or external cavity, coupled cavities, bent-guide, varying width, thickness or composition of the active region the resonator having a periodic structure, e.g. in distributed feedback [DFB] lasers
    • H01S5/1206Construction or shape of the optical resonator, e.g. extended or external cavity, coupled cavities, bent-guide, varying width, thickness or composition of the active region the resonator having a periodic structure, e.g. in distributed feedback [DFB] lasers having a non constant or multiplicity of periods
    • H01S5/1209Sampled grating

Definitions

  • the present invention relates to power and wavelength control for semiconductor diode lasers, and particularly, power and wavelength control for Sampled Grating Distributed Bragg Reflector (SGDBR) semiconductor lasers.
  • SGDBR Sampled Grating Distributed Bragg Reflector
  • Diode lasers are being used in such applications as optical communications, sensors and computer systems. In such applications, it is very useful to employ lasers that can be easily adjusted to output frequencies across a wide wavelength range.
  • a diode laser which can be operated at selectably variable frequencies covering a wide wavelength range, i.e. a widely tunable laser, is an invaluable tool.
  • the number of separate channels that can utilize a given wavelength range is exceedingly limited without such a laser. Accordingly, the number of individual communications paths that can exist simultaneously in a system employing such range-hmited lasers is similarly very limited.
  • diode lasers have provided solutions to many problems in communications, sensors and computer system designs, they have not fulfilled their potential based on the available bandwidth afforded by light-based systems.
  • SGDBR sampled-grating distributed-Bragg-reflector
  • GCSR grating-coupled sampled-reflector
  • VCSEL-MEMs vertical-cavity spontaneous emission lasers with micro-electromechanical moveable mirrors
  • a typical optical output power and output wavelength control system of the invention for use with a sampled grating distributed Bragg reflector (SGDBR) laser comprises a controller for providing current or voltage inputs to the laser and current or voltage inputs to the thermal electric cooler controlling the optical output power and output wavelength and an external reference receiving an optical output from the laser and providing a reference output to the controller, wherein the controller compares the optical output power and output wavelength of the laser to the reference output and locks the optical output power and output wavelength of the laser to the external reference.
  • SGDBR sampled grating distributed Bragg reflector
  • a feedback loop is used in conjunction with an external reference wavelength locker, e.g., a Fabry-Perot Etalon reference though not limited to, to lock the SGDBR laser optical output power and wavelength to the reference.
  • the feedback loop compensates for the drift of the controller current sources, as well as providing compensation for long-term degradation of the SGDBR laser. Further, the present invention provides compensation for the SGDBR laser operating points over an ambient temperature range.
  • the power and wavelength controls may operate as independent controls of the SGDBR laser, or can be controlled in an interdependent manner to accurately provide a given optical power and output wavelength regardless of the length of time that the SGDBR laser has been in use, the ambient temperature, or other external conditions of where the SGDBR laser is operating.
  • each control algorithm induces changes in one current or operating temperature independent of the other using proportional integral control routines.
  • the algorithm induces primary changes in one current or operating temperature and corrects for secondary changes in the other currents with an adaptive filter or estimator. This approach compensates for wavelength shifts or power changes and mirror misalignment induced when the control adjusts its primary variable. These changes are then used to compensate values in the aging model for the other wavelength settings.
  • FIGS. 1 A and IB depict a typical multiple-section, widely-tunable laser as used in the invention
  • FIG. 2 is a block diagram of a typical embodiment of die invention
  • FIG. 3 illustrates an open loop control system of present invention
  • FIGS. 4A - 4B are flowcharts of the incremental and mirror reflectivity peak calibration processes
  • FIG. 5 is a block diagram of the current sources used in the controller
  • FIG. 6 illustrates a typical current source circuit of the present invention
  • FIG. 7 illustrates a typical current mirror circuit of the present invention
  • FIGS. 8A - 8C illustrate a typical closed loop power and wavelength control system
  • FIG. 9 illustrates the DSP gain voltage control block diagram
  • FIG. 10 illustrates the analog gain voltage control block diagram
  • FIG. 11 illustrates the analog phase lock circuit block diagram
  • FIG. 12 illustrates the combined operation of analog gain voltage control circuits to correct the outputs to the two mirrors from the open loop digital controller.
  • FIGS. 1A and IB depict a typical multiple-section, widely-tunable laser 100 as used in the invention.
  • a typical SGDBR laser 100 as used in the invention essentially comprises four sections that allow its unique tuning characteristics.
  • the laser 100 is comprised of a gain section 102, a phase section 104, a back mirror 106 and a front mirror 108. Below these sections is a waveguide 110 for guiding and reflecting the light beam, while the entire device is formed on a substrate 112.
  • bias voltages are connected to the electrodes 114 on the top of the device and a ground is connected to a lower substrate 112.
  • a bias voltage on the gain section 102 is above a lasing threshold, a laser output is produced from an active region 116.
  • the front and back mirrors 108, 106 are typically sampled grating mirrors that respectively include different sampling periods 118, 120.
  • the gratings behave as wavelength-selective reflectors such that partial reflections are produced at periodic wavelength spacings of an optical signal carried in the cavity.
  • the front and back sampled grating mirrors 108, 06 together determine the wavelength with the minimum cavity loss through their effective lengths and grating differential; however, the lasing wavelength can only occur at the longitudinal modes of the optical cavity in the waveguide 110. Therefore, it is important to adjust the mirrors 106, 108 and waveguide 110 modes to coincide, thereby achieving the lowest cavity loss possible for the desired wavelength and maximum mode stability.
  • the phase section 104 of the device shown in FIG. 1 is used to adjust the optical length of the cavity in order to position the cavity modes.
  • Optional back-side monitor 122 and front-side semiconductor optical amplifier (SOA) and/ or optical modulator 124 sections are also indicated.
  • Currents are applied to the various electrodes 114 of the aforementioned sections to provide a desired output optical power and wavelength as discussed in U.S. Patent 4,896,325, issued January 23, 1990, to Larry A. Coldren, and entitled "MULTI-SECTION TUNABLE LASER WITH DIFFERING MULTI-ELEMENT MIRRORS", which patent is incorporated by reference herein.
  • a current to the gain section 102 creates light and provides gain to overcome losses in the laser cavity; currents to the two differing
  • SGDBR wavelength-selective mirrors 106, 108 are used to tune a net low-loss window across a wide wavelength range to select a given mode; and a current to the phase section 104 provides for a fine toning of the mode wavelength. It should also be understood that the sections are somewhat interactive, so that currents to one section will have some effect on the parameters primarily controlled by the others.
  • FIG. 2 is a block diagram of a typical control system 200 embodiment of the invention.
  • the controller 202 applies input signals 204 to the various sections of the laser 206 to operate it and produce a laser output 208 at a desired wavelength. Many factors may influence the laser output 208 and the controller 202 optimally stabilizes the laser output 208 over the life of the laser 206.
  • the controller 202 may monitor the laser 206 and its output via feedback signals 210 and adjust the various laser inputs 204 accordingly.
  • the laser 206 monitors the feedback signals 210 of the multiple-section, widely tunable laser gain section voltage, temperature, and an external reference 212, such as a wavelength locker (e.g.
  • the controller 202 adjusts the laser section currents and temperature to maintain a fixed optical power and wavelength.
  • the Laser temperature is regulated with a cooling device 214, such as a thermo-electric cooler (TEC), via a separate control loop.
  • TEC thermo-electric cooler
  • the laser 206 generates continuous optical output power.
  • the controller 202 interfaces to the host over a system interface 216, such as a serial or parallel interface.
  • the host commands the operation of the controller 202.
  • the controller 202 regulates the laser optical output power and wavelength and may operate in one of the following control modes:
  • FIG. 3 illustrates an open loop control system 300 that sets the laser optical output 208 power and wavelength by setting the laser section current inputs 204 from values in an aging model stored in the controller 202.
  • the current inputs 204 may be applied, for example, to a back mirror (BM), phase (Ph), Gain (Gn), front mirror (FM), and optical amplifier (SOA) sections of the laser 304.
  • the controller 202 regulates the laser temperature to a fixed value by monitoring a sensor 308 and conttolling the cooler 214 accordingly.
  • the current input 204 settings or operating points of the various sections of the laser 304 are generated by a calibration routine. The settings are fixed over the lifetime of the product.
  • the choice of the operating current inputs 204, the current sources, and temperature regulator guarantees maximum stability of the optical output wavelength and power over operating lifetime and ambient environmental conditions.
  • the integrated optical amplifier (SOA), like the integrated modulator, is optional and not included on all designs.
  • the laser operating points are determined by either an incremental calibration routine or a mirror reflectivity peak calibration routine.
  • Incremental calibration starts with the mirrors aligned at mirror reflectivity peak 0 and then searches for the next lower channel. At each cavity mode, it resets the phase current to its initial value and continues the search. At the end of each mirror tuning range, the mirror currents are reset to the next mirror reflectivity peak. Once the wavelength wraps around, the process is repeated at mirror reflectivity peak 0 by searching for the next upper channel.
  • FIG. 4A is a flowchart of the incremental calibration process.
  • the typical process may begin by setting the gain current at a nominal operation current at block 404.
  • the mirrors are set at the next reflectivity peak in a chosen direction (up or down) at block 406. If the wavelength wrapped at block 402, the chosen direction is changed at block 400 and the process begins again. If the wavelength did not wrap, the phase current is set at a minimum operation current at block 410 and the mirrors are locked to the cavity mode at block 412. If the mirrors have reached the end of their toning range at block 408, the process resets to block 406 at the next reflectivity peak. If the tuning range has not been reached, the power and wavelength are locked at the channel and the mirrors are aligned at block 416.
  • the channel and corresponding input currents are recorded at block 418 and the laser is stepped to the next channel with the mirrors lock to phase at block 420. If the cavity mode has been passed at block 414, the process restarts at block 410 to reset the phase current. If the cavity mode has not been passed, power and wavelength are locked again at the new channel as the process resets to block 416. This process will continue until a change in wavelength is indicated again at block 400. At this point, the process ends.
  • the following pseudo-code also describes the logic of the incremental calibration shown in FIG 4A.
  • Mirror reflectivity peak calibration determines the mirror reflectivity peaks, generates the mirror tuning efficiency curves, and uses the curves to set the mirror currents for each channel.
  • FIG. 4B is a flowchart of the mirror reflectivity peak calibration process.
  • the process may begin with sweeping the mirror with the cavity mode aligned to the mirror at block 424.
  • the gain voltage minima which correspond to the mirror reflectivity peaks, are located at block 426.
  • the currents corresponding to the minima are recorded at block 428. If the wavelength does not cross the 0 peak at block 422, the process returns to block 424 to continue sweeping the mirror. Otherwise, a mirror tuning efficiency curve is generated from the reflectivity peaks at block 430.
  • the mirrors are set to a channel usmg the mirror toning efficiency curve.
  • the phase section is aligned to the mirrors at block 436 and the wavelength is locked to the channel using wavelength control at block 438.
  • FIG. 5 is a block diagram of the current sources 500 used in the controller 202.
  • the Controller current sources 500 drive the phase, mirror, amplifier, and gain sections of the laser 100.
  • the current sources are comprised of a voltage reference 504, individual 16-bit digital to analog converters 506 (DACs), and voltage to current (VI) amplifiers 508.
  • the DACs 506 connect to the digital signal processor (DSP) synchronous serial port 510 (SSP) through a programmable logic device 512 (PLD).
  • DSP digital signal processor
  • SSP synchronous serial port 510
  • PLD programmable logic device 512
  • the PLD 512 provides a logic interface between the DSP SSP 510 and the DACs 506.
  • the VI amplifiers 508 translate the DAC voltage outputs 514 to proportional current inputs 204 that drive the laser sections.
  • FIG. 6 illustrates a typical current source circuit 600 of the present invention.
  • the voltage to current amplifier is a modified Howland circuit source (MHCS).
  • a current mirror 602 is added to the output stage of the ampHfier 604 to increase the drive current beyond that of the ampHfier 604 alone.
  • a filter stage 606 is added at the load 608 to reduce noise.
  • FIG. 7 illustrates a typical current mirror circuit 602 of the present invention.
  • the current mirror inverts the output of the ampHfier 604, which requires the source, Vin, at the inverting node of the ampHfier 604 of the current source circuit 600.
  • the current mirror operates at a fixed gain that is determined, primarily, by the ratio of the resistors 702 in the emitter leads of the transistors.
  • An RC compensation network 704 is added to insure stability of the ampHfier and current mirror.
  • the gain of the current is variable up to a maximum ratio. The maximum ratio is determined by the additional drift introduced by heating of the transistor 706 and sense resistor 708 and the maximum thermal loss that can be sustained by the transistor 706 and sense resistor 708. If additional gain is required, an additional Qmo and Rmo section can be added to the tn ror. 602.
  • FIGS. 8A - 8C illustrate a typical closed loop power and wavelengdi control system.
  • FIG. 8A iUustrates the control block diagram.
  • Power and wavelength control 800 combines open loop control (as shown in FIG. 3) and feedback 210A from an external wavelength locker (e.g., a Fabry-Perot Etalon) reference 212 to lock the laser optical output power and wavelength to the reference 212.
  • Power and wavelength control compensates for drift in the controHer current sources 508 and the laser operating points over time and temperature.
  • the aging model or lookup table can be updated so that the system is adapted to small changes in device characteristics as it ages. Also, by using a formula based upon the initial caHbration characteristics, the currents for the other desired operating powers and wavelength channels stored in the aging model can be adjusted as well. For example, the currents for each section at any other channel are adjusted in proportion to the change in that section current at the operating channel.
  • the power and wavelength controls may each operate independently or interdependently with other laser inputs.
  • FIG. 8B is a flow diagram of independent control of the power and wavelength.
  • the least complex conttol algorithm is where the controls operate independently. Each control algorithm induces changes in one laser input, such as a current or temperature, independent of the other laser inputs.
  • the conttol algorithms are classical proportional, integral control routines.
  • the laser output is compared to the reference to identify whether a change in optical power and/ or optical wavelength is indicated at block 810. If a change in the optical power is indicated at block 812, the optical power is adjusted by the gain current (Ign) or by the current to a SOA (if integrated into the Laser) at block 814. If a change in the optical wavelength is indicated at block 814, optical wavelength is adjusted by the phase current (Iph) or the submount temperature at block 818. Of course, the order of the power or wavelength adjustment is unimportant.
  • the aging model may be updated whenever a change (in power or wavelength) is indicated. Mirror currents are left fixed.
  • FIG. 8C is a flow diagram of interdependent control of the power and wavelength.
  • the independent control algorithm is slow and marginaHy stable in its response to changes in the optical power output and optical wavelength.
  • the mirrors and cavity mode become misaHgned as the control algorithm adjusts the gain and phase currents from their predefined values.
  • the quaHty of the optical output is reduced (decreased side mode suppression ratio) and the probability of a mode hop is increased (wavelength shift) as the mirrors and cavity mode become misaHgned.
  • the interdependent control algorithm induces primary changes in one laser input, such as a current or temperature, and corrects for secondary changes in at least one other laser input with an adaptive filter or estimator. This compensates for wavelength shifts or power changes and mirror misaHgnment induced when the control adjusts its primary variable.
  • the laser output is compared to the reference to identify whether a change in optical power and/or optical wavelength is indicated at block 820. If a change in the optical power is indicated at block 822, the power is adjusted by the gain current (Ign) at block 824 and the wavelength is stabilized by adjusting the phase current (Iph) by an adaptive filter at block 826.
  • the mirror currents are reaHgned by a fixed estimator at block 828.
  • the aging model is updated at block 836. If a change in the optical wavelength is indicated at block 830, wavelength is adjusted by the phase current (Iph) or the carrier temperature at block 832. The power is stabilized by adjusting the gain current (Ign) by an adaptive filter at block 834. and the mirror currents are reaUgned by a fixed estimator at block 828.
  • the aging model is updated at block 836.
  • the interdependent controls provide more robust, stable, and faster convergence of the power and wavelength to its reference value.
  • the aging model is then updated to reflect the new model coefficients whereby the currents from the aging model or look-up table are adjusted for a given desired wavelength and power. Also, the changes required for this particular channel can be used to estimate the changes required for aH other channels.
  • Gain Voltage Conttol uses feedback from the Laser gain section voltage to keep the mirrors aHgned with the cavity mode. It aHgns the mirrors by minimizing the Laser gain section voltage.
  • the Laser gain section voltage minimum is where the cavity loss is a minimum. It corresponds to maximum optical power output, wavelength stability, and side mode suppression ratio.
  • Gain voltage control is implemented in the DSP using a numerical minima search or a least mean squares (LMS) quadratic estimator or in analog circuitry using a phase locker (PL) circuit.
  • LMS least mean squares
  • PL phase locker
  • FIG. 9 illustrates the DSP gain voltage control block diagram.
  • the DSP dithers the Laser mirror currents 902, 904 and monitors the Laser gain section voltage 906. It uses a numerical algorithm to aHgn the mirrors by locating the minima of the Laser gain section voltage.
  • the minima search algorithm uses three data points (mirror current, gain voltage) and estimates the slope of the gain voltage curve with respect to the mirror current.
  • the algorithm steps towards the gain voltage minima and calculates the next data point and uses the new data point and the two best points to re-estimate the slope of the gain voltage curve.
  • the algorithm continues the above step process, continuatty searching for the gain voltage minima.
  • the minima search algorithm is susceptible to wandering around the gain voltage minima due to noise in the sampled gain voltage signal. The wandering is reflected as drift and noise on the optical signal.
  • the LMS estimator reduces the wander and noise by using an array of data points to estimate the gain voltage surface, in effect, filtering the noise.
  • the LMS estimator converges to the gain voltage minima faster and smoother than the minima search.
  • the gain section voltage can be modeled using a causal Volterra series expansion over 2 input signals, the front mirror and back mirror currents.
  • the analog circuitry and the device itself aHow a memoryless model, so a 5-tap adaptive quadratic filter model will suffice.
  • the LMS estimator can then be achieved using either of two classic adaptive filter update algorithms, a standard gradient descent adaptation (LMS or block LMS algorithm) or a (faster) recursive least squares adaptation (RLS algorithm — based on Newton's Method).
  • LMS standard gradient descent adaptation
  • RLS algorithm faster recursive least squares adaptation
  • the second approach is used to achieve faster convergence of adaptive linear filters when the signals driving the system do not have sufficient spectral flatness to aHow a rapid gradient descent.
  • the gradient descent approach converges just as fast as the RLS approach when white noise can be used to drive the system.
  • Recently pubHshed results indicate that comparable rates of convergence can be achieved with adaptive quadratic filters if a minor filter structure modification is used and (pseudo) Gaussian white noise can be used to drive the system.
  • FIG. 10 illustrates the analog gain voltage conttol block diagram.
  • the gain voltage 1002 is connected to analog phase lockers (PL) 1004A, 1004B for each mirror section 1006A, 1006B.
  • the digital algorithms are Hmited in speed and accuracy by the analog to digital converters (ADC or A/D) 1008A, 1008B and digital to analog converters (DAC or D/A) 1010A, 1010B as weU as the signal to noise ratio (SNR) of the circuit.
  • ADC or A/D analog to digital converters
  • DAC or D/A digital to analog converters
  • the analog phase locker's speed and accuracy is Hmited by the SNR of the circuit.
  • FIG. 11 Illustrates the analog phase lock circuit block diagram 1100.
  • the analog phase locker is a high speed, analog-locking loop. It is realized by a phase lock loop (PLL) or RF dither locker.
  • the PL works with the open loop conttol circuit.
  • the PL uses a high frequency narrowband stimulus 1102 to dither the mirror current.
  • the gain voltage (Vg) 1104 is measured with a tuned, narrowband ampHfier 1106.
  • the phase difference between stimulus and measured signal is extracted by a phase comparator 1108 and drives an error ampHfier that adjusts the mirror 1110 current to the gain voltage minima and is sampled by an ADC 1112.
  • the PL error ampHfier output is measured by the DSP.
  • the DSP adjusts the mirror current values in the Open Loop Conttol aging model to reduce the error to zero.
  • the DSP effectively operates as an integrator function.
  • FIG. 12 illustrates the combined operation of analog gain voltage control circuits to correct the outputs to the two mirrors from the open loop digital controUer.
  • the digital memory /DSP 1200 can set a first approximation current and voltage from a table look up.
  • the analog correction circuits 1004A, 1004B can provide feedback and correction signals to the device as described previously, and the digital controller then monitors the correction signals 1202, 1204 and readjusts the currents and voltages to have the feedback currents from the analog correction portions approach zero.
  • the adjusted currents are used by the aging model to update the aging coefficients. This allows for correction of the laser controUer over the Hfe of the SGDBR laser, and accounts for changes in operating temperatures and conditions as weU as changes in the operation of the SGDBR laser internal components.
  • Power, wavelength, and gain voltage control operates the power and wavelength control and gain voltage conttol simultaneously.

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Abstract

The invention discloses an optical output power and output wavelength control system for use with a sampled grating distributed Bragg reflector (SGDBR) laser. The optical output power and output wavelength control system for use with a sampled grating distributed Bragg reflector (SGDBR) laser comprises a controller for providing current inputs to the laser controlling the optical output power and output wavelength and an external reference receiving an optical output from the laser and providing a reference output to the control, wherein the controller compares the optical output power and output wavelength of the laser to the reference output and locks the optical output power and output wavelength of the laser to the external reference.

Description

POWER AND WAVELENGTH CONTROL OF SAMPLED GRATING DISTRIBUTED BRAGG REFLECTOR LASERS
CROSS-REFERENCE TO RELATED APPLICATIONS This application claims the benefit under 35 U.S.C. §119(e) of the following co- pending and commonly-assigned U.S. patent applications:
Provisional Application Serial No. 60/215,739, filed June 29, 2000, by Gregory A. Fish and Larry A. Coldren, entitled "OPEN LOOP CONTROL OF SGDBR LASERS," attorneys' docket number 122.4-US-P1;
Provisional Application Serial No. 60/215,170, filed June 29, 2000, by Paul F. Crowder, entitled "POWER AND WAVELENGTH CONTROL OF SGDBR LASERS," attorneys' docket number 122.5-US-P1, and Provisional Application Serial No. 60/215,742, filed June 29, 2000, by Paul F.
Crowder and Larry A. Coldren, entitled "GAIN VOLTAGE CONTROL OF SGDBR LASERS," attorneys' docket number 122.6-US-P1, all of which applications are incorporated by reference herein. This application is a continuation-in-part patent application of the following co- pending and commonly-assigned U.S. patent applications:
Utility Application Serial No. 09/848,791, filed May 4, 2001, by Gregory A. Fish and Larry A. Coldren, entitled "IMPROVED MIRROR AND CAVITY DESIGNS FOR SAMPLED GRATING DISTRIBUTED BRAGG REFLECTOR LASERS," attorneys' docket number 122.1-US-Ul, which claims the benefit under 35 U.S.C. §119(e) of Provisional Application Serial No. 60/203,052, filed May 4, 2000, by Gregory A. Fish and Larry A. Coldren, entitled "IMPROVED MIRROR AND CAVITY DESIGNS FOR SGDBR LASERS," attorneys' docket number 122.1-US-P1;
Utility Application Serial No. 09/872,438, filed June 1, 2001, by Larry A. Coldren, Gregory A. Fish, and Michael C. Larson, entitled "HIGH-POWER, MANUFACTURABLE SAMPLED GRATING DISTRIBUTED BRAGG
REFLECTOR LASERS," attorneys' docket number 122.2-US-U1, which claims the benefit under 35 U.S.C. §119(e) of Provisional Application Serial No. 60/209,068, filed June 2, 2000, by Larry A. Coldren Gregory A. Fish, and Michael C. Larson, and entitled "HIGH-POWER, MANUFACTURABLE SAMPLED-GRATING DBR LASERS," attorneys' docket number 122.2-US-P1;
Utility Application Serial No. XX/XXX,XXX, filed June 11, 2001, by Gregory A. Fish and Larry A. Coldren, entitled "IMPROVED, MANUFACTURABLE SAMPLED GRATING MIRRORS," attorneys' docket number 122.3-US-U1, which claims the benefit under 35 U.S.C. §119(e) of Provisional Application Serial No. 60/210,612, filed June 9, 2000, by Gregory A. Fish and Larry A. Coldren, entitled "IMPROVED, MANUFACTURABLE SAMPLED GRATING MIRRORS," attorneys' docket number 122.3-US-P1;
Utility Application Serial No. XX/XXX,XXX, filed on same day herewith, by Gregory A. Fish and Larry A. Coldren, entitled "OPEN LOOP CONTROL OF SGDBR LASERS," attorneys' docket number 122.4-US-U1, which claims the benefit under 35 U.S.C. §119(e) of Provisional Application Serial No. 60/215,739, filed June 29, 2000, by Gregory A. Fish and Larry A. Coldren, entitled "OPEN LOOP CONTROL OF SGDBR LASERS," attorneys' docket number 122.4-US-P1;
Utility Application Serial No. XX/XXX,XXX, filed on same day herewith, by Gregory A. Fish and Larry A. Coldren, entitled "GAIN VOLTAGE CONTROL OF SAMPLED GRATING DISTRIBUTED BRAGG REFLECTOR LASERS," attorneys' docket number 122.6-US-U1, which claims the benefit under 35 U.S.C. §119(e) of
Provisional Application Serial No. 60/215,742, filed June 29, 2000, by Paul F. Crowder and Larry A. Coldren, entitled "GAIN VOLTAGE CONTROL OF SGDBR LASERS," attorneys' docket number 122.6-US-P1; all of which applications are incorporated by reference herein.
BACKGROUND OF THE INVENTION 1. Field of the Invention.
The present invention relates to power and wavelength control for semiconductor diode lasers, and particularly, power and wavelength control for Sampled Grating Distributed Bragg Reflector (SGDBR) semiconductor lasers. 2. Description of the Related Art.
Diode lasers are being used in such applications as optical communications, sensors and computer systems. In such applications, it is very useful to employ lasers that can be easily adjusted to output frequencies across a wide wavelength range. A diode laser which can be operated at selectably variable frequencies covering a wide wavelength range, i.e. a widely tunable laser, is an invaluable tool. The number of separate channels that can utilize a given wavelength range is exceedingly limited without such a laser. Accordingly, the number of individual communications paths that can exist simultaneously in a system employing such range-hmited lasers is similarly very limited. Thus, while diode lasers have provided solutions to many problems in communications, sensors and computer system designs, they have not fulfilled their potential based on the available bandwidth afforded by light-based systems. It is important that the number of channels be increased in order for optical systems to be realized for many future applications. For a variety of applications, it is necessary to have tunable single-frequency diode lasers which can select any of a wide range of wavelengths. Such applications include sources and local oscillators in coherent lightwave communications systems, sources for other multi-channel lightwave communication systems, and sources for use in frequency modulated sensor systems. Continuous tunability is usually needed over some range of wavelengths. Continuous toning is important for wavelength locking or stabilization with respect to some other reference, and it is desirable in certain frequency shift keying modulation schemes.
In addition, widely tunable semiconductor lasers, such as the sampled-grating distributed-Bragg-reflector (SGDBR) laser, the grating-coupled sampled-reflector (GCSR) laser, and vertical-cavity spontaneous emission lasers with micro-electromechanical moveable mirrors (VCSEL-MEMs) generally must compromise their output power in order to achieve a large toning range. The basic function and structure of SGDBR lasers is detailed in U.S. Patent 4,896,325, issued January 23, 1990, to Larry A. Coldren, and entitled "MULTI-SECTION TUNABLE LASER WITH DIFFERING MULTI-ELEMENT MIRRORS", which patent is incorporated by reference herein. Designs that can provide over 40 n of tuning range have not been able to provide much more than a couple of milliwatts of power out at the extrema of their tuning spectrum. However, current and future optical fiber communication systems as well as spectroscopic applications require output powers in excess of 10 W over the full toning band. Current International Telecommunication Union (ITU) bands are about 40 nm wide near 1.55 μm, and it is desired to have a single component that can cover at least this optical bandwidth. Systems that are to operate at higher bit rates will require more than 20 mW over the full ITU bands. Such powers are available from distributed feedback (DFB) lasers, but these can only be tuned by a couple of nanometers by adjusting their temperature. Thus, it is very desirable to have a source with both wide tuning range (> 40 nm) and high power (> 20 mW) without a significant increase in fabrication complexity over existing widely tunable designs. Furthermore, in addition to control of the output wavelength, control of the optical power output for a tunable laser is an equally important endeavor as optical power determines the potential range for the laser. Thus, there is a need in the art for devices and methods to precisely control of the power and wavelength output of semiconductor lasers. The present invention meets these needs.
SUMMARY OF THE INVENTION The present invention discloses devices and methods for controlling the power and wavelength of semiconductor lasers. A typical optical output power and output wavelength control system of the invention for use with a sampled grating distributed Bragg reflector (SGDBR) laser comprises a controller for providing current or voltage inputs to the laser and current or voltage inputs to the thermal electric cooler controlling the optical output power and output wavelength and an external reference receiving an optical output from the laser and providing a reference output to the controller, wherein the controller compares the optical output power and output wavelength of the laser to the reference output and locks the optical output power and output wavelength of the laser to the external reference. To accurately control the optical output power and precisely control the output wavelength of a tunable laser, a feedback loop is used in conjunction with an external reference wavelength locker, e.g., a Fabry-Perot Etalon reference though not limited to, to lock the SGDBR laser optical output power and wavelength to the reference. The feedback loop compensates for the drift of the controller current sources, as well as providing compensation for long-term degradation of the SGDBR laser. Further, the present invention provides compensation for the SGDBR laser operating points over an ambient temperature range.
The power and wavelength controls may operate as independent controls of the SGDBR laser, or can be controlled in an interdependent manner to accurately provide a given optical power and output wavelength regardless of the length of time that the SGDBR laser has been in use, the ambient temperature, or other external conditions of where the SGDBR laser is operating.
In an independent control system, each control algorithm induces changes in one current or operating temperature independent of the other using proportional integral control routines. In an interdependent control schema, the algorithm induces primary changes in one current or operating temperature and corrects for secondary changes in the other currents with an adaptive filter or estimator. This approach compensates for wavelength shifts or power changes and mirror misalignment induced when the control adjusts its primary variable. These changes are then used to compensate values in the aging model for the other wavelength settings.
BRIEF DESCRIPTION OF THE DRAWINGS Referring now to the drawings in which like reference numbers represent corresponding parts throughout:
FIGS. 1 A and IB depict a typical multiple-section, widely-tunable laser as used in the invention;
FIG. 2 is a block diagram of a typical embodiment of die invention; FIG. 3 illustrates an open loop control system of present invention; FIGS. 4A - 4B are flowcharts of the incremental and mirror reflectivity peak calibration processes; FIG. 5 is a block diagram of the current sources used in the controller;
FIG. 6 illustrates a typical current source circuit of the present invention; FIG. 7 illustrates a typical current mirror circuit of the present invention;
FIGS. 8A - 8C illustrate a typical closed loop power and wavelength control system;
FIG. 9 illustrates the DSP gain voltage control block diagram; FIG. 10 illustrates the analog gain voltage control block diagram;
FIG. 11 illustrates the analog phase lock circuit block diagram; and
FIG. 12 illustrates the combined operation of analog gain voltage control circuits to correct the outputs to the two mirrors from the open loop digital controller.
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
In the following description, reference is made to the accompanying drawings which form a part hereof, and which is shown, by way of illustration, an embodiment of the present invention. It is understood that other embodiments may be utilized and structural changes may be made without departing from the scope of the present invention.
1. Overview
FIGS. 1A and IB depict a typical multiple-section, widely-tunable laser 100 as used in the invention. A typical SGDBR laser 100 as used in the invention essentially comprises four sections that allow its unique tuning characteristics. The laser 100 is comprised of a gain section 102, a phase section 104, a back mirror 106 and a front mirror 108. Below these sections is a waveguide 110 for guiding and reflecting the light beam, while the entire device is formed on a substrate 112. In use, bias voltages are connected to the electrodes 114 on the top of the device and a ground is connected to a lower substrate 112. When a bias voltage on the gain section 102 is above a lasing threshold, a laser output is produced from an active region 116.
The front and back mirrors 108, 106 are typically sampled grating mirrors that respectively include different sampling periods 118, 120. The gratings behave as wavelength-selective reflectors such that partial reflections are produced at periodic wavelength spacings of an optical signal carried in the cavity. The front and back sampled grating mirrors 108, 06 together determine the wavelength with the minimum cavity loss through their effective lengths and grating differential; however, the lasing wavelength can only occur at the longitudinal modes of the optical cavity in the waveguide 110. Therefore, it is important to adjust the mirrors 106, 108 and waveguide 110 modes to coincide, thereby achieving the lowest cavity loss possible for the desired wavelength and maximum mode stability. The phase section 104 of the device shown in FIG. 1 is used to adjust the optical length of the cavity in order to position the cavity modes.
Optional back-side monitor 122 and front-side semiconductor optical amplifier (SOA) and/ or optical modulator 124 sections are also indicated. Currents are applied to the various electrodes 114 of the aforementioned sections to provide a desired output optical power and wavelength as discussed in U.S. Patent 4,896,325, issued January 23, 1990, to Larry A. Coldren, and entitled "MULTI-SECTION TUNABLE LASER WITH DIFFERING MULTI-ELEMENT MIRRORS", which patent is incorporated by reference herein. As described therein, a current to the gain section 102 creates light and provides gain to overcome losses in the laser cavity; currents to the two differing
SGDBR wavelength-selective mirrors 106, 108 are used to tune a net low-loss window across a wide wavelength range to select a given mode; and a current to the phase section 104 provides for a fine toning of the mode wavelength. It should also be understood that the sections are somewhat interactive, so that currents to one section will have some effect on the parameters primarily controlled by the others.
Currents and voltages are applied and/or monitored at the optional sections to monitor power or wavelength, or provide amplification or modulation as specified in commonly-assigned and co-pending applications, namely Application Serial No. 09/614,378, filed on July 12, 2000, by Gregory Fish et al., and entitled "OPTOELECTRONIC LASER WITH INTEGRATED MODULATOR,";
Application Serial No. 09/614,377, filed on July 12, 2000, by Larry Coldren, and entitled "INTEGRATED OPTOELECTRONIC WAVELENGTH CONVERTER,"; and Application Serial No. 09/614,375, filed on July 12, 2000, by Beck Mason et al., and entitled "TUNABLE LASER SOURCE WITH INTEGRATED OPTICAL AMPLIFIER," each of which claims priority to Provisional Applications Serial No. 60/152,072, 60/152,049 and 60/152,072, all filed on September 2, 1999; all of which applications are incorporated by reference herein. The current invention operates under the same general principles and techniques as these background inventions.
FIG. 2 is a block diagram of a typical control system 200 embodiment of the invention. In general, the controller 202 applies input signals 204 to the various sections of the laser 206 to operate it and produce a laser output 208 at a desired wavelength. Many factors may influence the laser output 208 and the controller 202 optimally stabilizes the laser output 208 over the life of the laser 206. In closed-loop variants of the control system 200, the controller 202 may monitor the laser 206 and its output via feedback signals 210 and adjust the various laser inputs 204 accordingly. For example, in one embodiment the laser 206 monitors the feedback signals 210 of the multiple-section, widely tunable laser gain section voltage, temperature, and an external reference 212, such as a wavelength locker (e.g. a Fabry-Perot Etalon), via respective feedback signals 210A - 210C. The controller 202 adjusts the laser section currents and temperature to maintain a fixed optical power and wavelength. The Laser temperature is regulated with a cooling device 214, such as a thermo-electric cooler (TEC), via a separate control loop. The laser 206 generates continuous optical output power.
The controller 202 interfaces to the host over a system interface 216, such as a serial or parallel interface. The host commands the operation of the controller 202. The controller 202 regulates the laser optical output power and wavelength and may operate in one of the following control modes:
A. Open loop control using fixed operating points.
B. Power and wavelength control using open loop control's fixed operating points as initial operating points and regulating the optical power and wavelength to a reference thereafter. C. Gain voltage control using open loop control's fixed operating points as initial operating points and regulating the Laser mirror alignment with the cavity mode thereafter. D. Regulating power, wavelength, and gain voltage using open loop control's fixed operating points as initial operating points. Various embodiments of the control modes are detailed hereafter. 2.0 Open Loop Control
FIG. 3 illustrates an open loop control system 300 that sets the laser optical output 208 power and wavelength by setting the laser section current inputs 204 from values in an aging model stored in the controller 202. The current inputs 204 may be applied, for example, to a back mirror (BM), phase (Ph), Gain (Gn), front mirror (FM), and optical amplifier (SOA) sections of the laser 304. The controller 202 regulates the laser temperature to a fixed value by monitoring a sensor 308 and conttolling the cooler 214 accordingly. The current input 204 settings or operating points of the various sections of the laser 304 are generated by a calibration routine. The settings are fixed over the lifetime of the product. The choice of the operating current inputs 204, the current sources, and temperature regulator guarantees maximum stability of the optical output wavelength and power over operating lifetime and ambient environmental conditions.
As previously mentioned, the integrated optical amplifier (SOA), like the integrated modulator, is optional and not included on all designs.
2.1 Operating Points
The laser operating points are determined by either an incremental calibration routine or a mirror reflectivity peak calibration routine.
2.1.1 Incremental Calibration
Incremental calibration steps and locks the laser to each channel, such as each ITU wavelength channel using a calibrated wavelength locker as a reference, such as a Fabry-Perot etalon. It steps to the next channel by adjusting the phase current and locking the mirrors to the cavity mode with gain voltage control. Once at the channel, it locks the Laser wavelength to the channel by adjusting the phase current using wavelength control and the laser power to a predetermined set point by adjusting the gain current with power control.
Incremental calibration starts with the mirrors aligned at mirror reflectivity peak 0 and then searches for the next lower channel. At each cavity mode, it resets the phase current to its initial value and continues the search. At the end of each mirror tuning range, the mirror currents are reset to the next mirror reflectivity peak. Once the wavelength wraps around, the process is repeated at mirror reflectivity peak 0 by searching for the next upper channel.
FIG. 4A is a flowchart of the incremental calibration process. The typical process may begin by setting the gain current at a nominal operation current at block 404. The mirrors are set at the next reflectivity peak in a chosen direction (up or down) at block 406. If the wavelength wrapped at block 402, the chosen direction is changed at block 400 and the process begins again. If the wavelength did not wrap, the phase current is set at a minimum operation current at block 410 and the mirrors are locked to the cavity mode at block 412. If the mirrors have reached the end of their toning range at block 408, the process resets to block 406 at the next reflectivity peak. If the tuning range has not been reached, the power and wavelength are locked at the channel and the mirrors are aligned at block 416. The channel and corresponding input currents are recorded at block 418 and the laser is stepped to the next channel with the mirrors lock to phase at block 420. If the cavity mode has been passed at block 414, the process restarts at block 410 to reset the phase current. If the cavity mode has not been passed, power and wavelength are locked again at the new channel as the process resets to block 416. This process will continue until a change in wavelength is indicated again at block 400. At this point, the process ends. The following pseudo-code also describes the logic of the incremental calibration shown in FIG 4A.
For each wavelength direction about mirror reflectivity peak 0 Until (wavelength wraps) Set gain current at nominal operational current
Set mirrors at next reflectivity peak Until (end of mirror tuning range)
Set phase current at minimum operational current Lock mirrors to cavity mode Until (passes cavity mode)
Lock power and wavelength at channel and align mirrors Record channel and currents
Step to next channel with mirrors locked to phase
2.1.2 Mirror Reflectivity Peak Calibration Mirror reflectivity peak calibration determines the mirror reflectivity peaks, generates the mirror tuning efficiency curves, and uses the curves to set the mirror currents for each channel.
FIG. 4B is a flowchart of the mirror reflectivity peak calibration process. The process may begin with sweeping the mirror with the cavity mode aligned to the mirror at block 424. The gain voltage minima, which correspond to the mirror reflectivity peaks, are located at block 426. The currents corresponding to the minima are recorded at block 428. If the wavelength does not cross the 0 peak at block 422, the process returns to block 424 to continue sweeping the mirror. Otherwise, a mirror tuning efficiency curve is generated from the reflectivity peaks at block 430. Then at block 434 the mirrors are set to a channel usmg the mirror toning efficiency curve. The phase section is aligned to the mirrors at block 436 and the wavelength is locked to the channel using wavelength control at block 438. Finally, the power is locked to the set point using the power control at block 440 and the channel and input currents are recorded at block 442. The process ends when the last channel has been located as checked at block 432. The following pseudo-code also describes the logic of the mirror reflectivity peak calibration shown in FIG 4B.
Until (wavelength crosses mirror reflectivity peak 0) Sweep mirror with cavity mode aligned to mirror Locate the gain voltage minima, which is the corresponding mirror reflectivity peak. Record the currents Generate mirror tuning efficiency curve from reflectivity peaks Until (step through all channels) Set mirrors to channel using mirror tuning efficiency curve
Align phase section to the mirrors Lock wavelength to channel using wavelength control Lock power to set point using power control Record the channel and currents
2.2 Current Sources
FIG. 5 is a block diagram of the current sources 500 used in the controller 202. The Controller current sources 500 drive the phase, mirror, amplifier, and gain sections of the laser 100. The current sources are comprised of a voltage reference 504, individual 16-bit digital to analog converters 506 (DACs), and voltage to current (VI) amplifiers 508. The DACs 506 connect to the digital signal processor (DSP) synchronous serial port 510 (SSP) through a programmable logic device 512 (PLD). The PLD 512 provides a logic interface between the DSP SSP 510 and the DACs 506. The VI amplifiers 508 translate the DAC voltage outputs 514 to proportional current inputs 204 that drive the laser sections.
2.2.1 Voltage to Current Converter
FIG. 6 illustrates a typical current source circuit 600 of the present invention. The voltage to current amplifier is a modified Howland circuit source (MHCS). A current mirror 602 is added to the output stage of the ampHfier 604 to increase the drive current beyond that of the ampHfier 604 alone. A filter stage 606 is added at the load 608 to reduce noise.
FIG. 7 illustrates a typical current mirror circuit 602 of the present invention. The current mirror inverts the output of the ampHfier 604, which requires the source, Vin, at the inverting node of the ampHfier 604 of the current source circuit 600. The current mirror operates at a fixed gain that is determined, primarily, by the ratio of the resistors 702 in the emitter leads of the transistors. An RC compensation network 704 is added to insure stability of the ampHfier and current mirror. The gain of the current is variable up to a maximum ratio. The maximum ratio is determined by the additional drift introduced by heating of the transistor 706 and sense resistor 708 and the maximum thermal loss that can be sustained by the transistor 706 and sense resistor 708. If additional gain is required, an additional Qmo and Rmo section can be added to the tn ror. 602.
3 Power and Wavelength Control FIGS. 8A - 8C illustrate a typical closed loop power and wavelengdi control system. FIG. 8A iUustrates the control block diagram. Power and wavelength control 800 combines open loop control (as shown in FIG. 3) and feedback 210A from an external wavelength locker (e.g., a Fabry-Perot Etalon) reference 212 to lock the laser optical output power and wavelength to the reference 212. Power and wavelength control compensates for drift in the controHer current sources 508 and the laser operating points over time and temperature.
Once new currents to the various sections 304 are estabkshed by locking to the external wavelength reference 212 for a given channel, the aging model or lookup table can be updated so that the system is adapted to small changes in device characteristics as it ages. Also, by using a formula based upon the initial caHbration characteristics, the currents for the other desired operating powers and wavelength channels stored in the aging model can be adjusted as well. For example, the currents for each section at any other channel are adjusted in proportion to the change in that section current at the operating channel.
dlgain = Igain,change / Igain,caHbration [at operating channel] change = (Igain,caHbration + dlgain * Igain,caHbration [at any other channel]
This is done for each section current. This insures that desired operating channels can always be accessed over the device's Hfetime.
The power and wavelength controls may each operate independently or interdependently with other laser inputs.
3.1 Independent FIG. 8B is a flow diagram of independent control of the power and wavelength.
The least complex conttol algorithm is where the controls operate independently. Each control algorithm induces changes in one laser input, such as a current or temperature, independent of the other laser inputs. The conttol algorithms are classical proportional, integral control routines. The laser output is compared to the reference to identify whether a change in optical power and/ or optical wavelength is indicated at block 810. If a change in the optical power is indicated at block 812, the optical power is adjusted by the gain current (Ign) or by the current to a SOA (if integrated into the Laser) at block 814. If a change in the optical wavelength is indicated at block 814, optical wavelength is adjusted by the phase current (Iph) or the submount temperature at block 818. Of course, the order of the power or wavelength adjustment is unimportant. In addition, the aging model may be updated whenever a change (in power or wavelength) is indicated. Mirror currents are left fixed.
3.2 Interdependent
FIG. 8C is a flow diagram of interdependent control of the power and wavelength. The independent control algorithm is slow and marginaHy stable in its response to changes in the optical power output and optical wavelength. The mirrors and cavity mode become misaHgned as the control algorithm adjusts the gain and phase currents from their predefined values. The quaHty of the optical output is reduced (decreased side mode suppression ratio) and the probability of a mode hop is increased (wavelength shift) as the mirrors and cavity mode become misaHgned.
The interdependent control algorithm induces primary changes in one laser input, such as a current or temperature, and corrects for secondary changes in at least one other laser input with an adaptive filter or estimator. This compensates for wavelength shifts or power changes and mirror misaHgnment induced when the control adjusts its primary variable. Here also, the laser output is compared to the reference to identify whether a change in optical power and/or optical wavelength is indicated at block 820. If a change in the optical power is indicated at block 822, the power is adjusted by the gain current (Ign) at block 824 and the wavelength is stabilized by adjusting the phase current (Iph) by an adaptive filter at block 826. The mirror currents are reaHgned by a fixed estimator at block 828. FoHowmg tins, the aging model is updated at block 836. If a change in the optical wavelength is indicated at block 830, wavelength is adjusted by the phase current (Iph) or the carrier temperature at block 832. The power is stabilized by adjusting the gain current (Ign) by an adaptive filter at block 834. and the mirror currents are reaUgned by a fixed estimator at block 828. Here too, the aging model is updated at block 836.
The interdependent controls provide more robust, stable, and faster convergence of the power and wavelength to its reference value.
As outlined above, the aging model is then updated to reflect the new model coefficients whereby the currents from the aging model or look-up table are adjusted for a given desired wavelength and power. Also, the changes required for this particular channel can be used to estimate the changes required for aH other channels.
4.0 Gain Voltage Control
Gain Voltage Conttol uses feedback from the Laser gain section voltage to keep the mirrors aHgned with the cavity mode. It aHgns the mirrors by minimizing the Laser gain section voltage. The Laser gain section voltage minimum is where the cavity loss is a minimum. It corresponds to maximum optical power output, wavelength stability, and side mode suppression ratio.
Gain voltage control is implemented in the DSP using a numerical minima search or a least mean squares (LMS) quadratic estimator or in analog circuitry using a phase locker (PL) circuit.
4.1 DSP Gain Voltage Control
FIG. 9 illustrates the DSP gain voltage control block diagram. The DSP dithers the Laser mirror currents 902, 904 and monitors the Laser gain section voltage 906. It uses a numerical algorithm to aHgn the mirrors by locating the minima of the Laser gain section voltage.
4.1.1 DSP Minima Search Algorithm
The minima search algorithm uses three data points (mirror current, gain voltage) and estimates the slope of the gain voltage curve with respect to the mirror current. The algorithm, steps towards the gain voltage minima and calculates the next data point and uses the new data point and the two best points to re-estimate the slope of the gain voltage curve. The algorithm continues the above step process, continuatty searching for the gain voltage minima.
4.1.2 DSP LMS Estimator The minima search algorithm is susceptible to wandering around the gain voltage minima due to noise in the sampled gain voltage signal. The wandering is reflected as drift and noise on the optical signal. The LMS estimator reduces the wander and noise by using an array of data points to estimate the gain voltage surface, in effect, filtering the noise. The LMS estimator converges to the gain voltage minima faster and smoother than the minima search.
For fixed phase and gain section currents, the gain section voltage can be modeled using a causal Volterra series expansion over 2 input signals, the front mirror and back mirror currents. For dithering signals in the sub-lOOkHz regime, the analog circuitry and the device itself aHow a memoryless model, so a 5-tap adaptive quadratic filter model will suffice.
The LMS estimator can then be achieved using either of two classic adaptive filter update algorithms, a standard gradient descent adaptation (LMS or block LMS algorithm) or a (faster) recursive least squares adaptation (RLS algorithm — based on Newton's Method). The second approach is used to achieve faster convergence of adaptive linear filters when the signals driving the system do not have sufficient spectral flatness to aHow a rapid gradient descent. However, in the case of adaptive linear filters, the gradient descent approach converges just as fast as the RLS approach when white noise can be used to drive the system. Recently pubHshed results indicate that comparable rates of convergence can be achieved with adaptive quadratic filters if a minor filter structure modification is used and (pseudo) Gaussian white noise can be used to drive the system.
There are two advantages of this LMS estimator approach. First, an initial tap- vector can be stored along with the 4 drive currents in the laser caHbration table in flash memory (resulting in much faster convergence). Second, the adaptation step size can be reduced as the system converges, reducing steady-state misadjustment in the mirror section currents. 4.2 Analog Gain Voltage Conttol
FIG. 10 illustrates the analog gain voltage conttol block diagram. The gain voltage 1002 is connected to analog phase lockers (PL) 1004A, 1004B for each mirror section 1006A, 1006B. The digital algorithms are Hmited in speed and accuracy by the analog to digital converters (ADC or A/D) 1008A, 1008B and digital to analog converters (DAC or D/A) 1010A, 1010B as weU as the signal to noise ratio (SNR) of the circuit. The analog phase locker's speed and accuracy is Hmited by the SNR of the circuit. FIG. 11 Illustrates the analog phase lock circuit block diagram 1100. The analog phase locker is a high speed, analog-locking loop. It is realized by a phase lock loop (PLL) or RF dither locker. The PL works with the open loop conttol circuit. The output of the PL adds to the output of the open loop conttol current sources.
The PL uses a high frequency narrowband stimulus 1102 to dither the mirror current. The gain voltage (Vg) 1104 is measured with a tuned, narrowband ampHfier 1106. The phase difference between stimulus and measured signal is extracted by a phase comparator 1108 and drives an error ampHfier that adjusts the mirror 1110 current to the gain voltage minima and is sampled by an ADC 1112.
The PL error ampHfier output is measured by the DSP. The DSP adjusts the mirror current values in the Open Loop Conttol aging model to reduce the error to zero. The DSP effectively operates as an integrator function.
FIG. 12 illustrates the combined operation of analog gain voltage control circuits to correct the outputs to the two mirrors from the open loop digital controUer. The digital memory /DSP 1200 can set a first approximation current and voltage from a table look up. The analog correction circuits 1004A, 1004B can provide feedback and correction signals to the device as described previously, and the digital controller then monitors the correction signals 1202, 1204 and readjusts the currents and voltages to have the feedback currents from the analog correction portions approach zero. The adjusted currents are used by the aging model to update the aging coefficients. This allows for correction of the laser controUer over the Hfe of the SGDBR laser, and accounts for changes in operating temperatures and conditions as weU as changes in the operation of the SGDBR laser internal components.
5 Power. Wavelength, and Gain Voltage Conttol
Power, wavelength, and gain voltage control operates the power and wavelength control and gain voltage conttol simultaneously.
6 Conclusion
The foregoing description of the preferred embodiment of the invention has been presented for the purposes of iUusttation and description. It is not intended to be exhaustive or to limit the invention to the precise form disclosed. Many modifications and variations are possible in Hght of the above teaching. It is not intended that the scope of the invention be limited by this detailed description.
This concludes the description of the preferred embodiment of the present invention. The foregoing description of the embodiments of the invention has been presented for the purposes of iUusttation and description. It is not intended to be exhaustive or to limit the invention to the precise form disclosed. Many modifications and variations are possible in Hght of the above teaching. It is intended that the scope of the invention be Hmited not by this detailed description, but rather by the claims appended hereto.

Claims

CLAIMS:
1. An optical output power and output wavelength control system for use with a sampled grating distributed Bragg reflector (SGDBR) laser, comprising: a controUer providing current inputs to the laser for conttolling output power and output wavelength of an optical output of the laser; and an external reference receiving the optical output from the laser and providing a reference output to the controUer based on the optical output; wherein the controUer compares the output power and output wavelength of the laser to the reference output and locks the output power and output wavelength of the laser to the external reference.
2. The conttol system of claim 1, wherein the current inputs are separately provided to a front mirror section, a gain section, a phase section and a back mirror section of the laser.
3. The control system of claim 1, wherein the current the controUer further comprises current sources providing each current input for separate sections of the laser.
4. The control system of claim 3, wherein the current sources comprise digital to analog converters separately couple to voltage to current ampHfiers providing the current inputs for the separate sections of the laser.
5. The control system of claim 3, further comprising a compensation circuit to control a drift of at least one controUer current source.
6. The control system of claim 3, further comprising a compensation circuit to control a drift caused by long-term degradation of the laser.
7. The control system of claim 3, further comprising a compensation circuit to control a drift caused by temperature.
8. The control system of claim 1, wherein the controUer further comprises a aging model including values which correspond to the current inputs to control the laser.
9. The conttol system of claim 8, wherein the values of the aging model control the laser operating power and wavelength.
10. The conttol system of claim 8, wherein the values of the aging model are based upon a initial caHbration of the laser.
11. The conttol system of claim 8, wherein the values of the aging model are updated based upon the comparison of the optical output power and output wavelength of the laser to the reference output.
12. The conttol system of claim 11, wherein updated values correspond a present operating power and wavelength.
13. The conttol system of claim 11, wherein updating the values includes using a formula based upon an initial caHbration to determine the values corresponding to various operating powers and wavelengths.
14. The control system of claim 1, wherein the controUer controls the optical output power by adjusting a single laser input independent from other laser inputs.
15. The conttol system of claim 14, wherein the single laser input is the current input to a gain section of the laser.
16. The conttol system of claim 14, wherein the single laser input is the current input to an optical ampHfier section of the laser.
17. The control system of claim 1, wherein the controUer controls the optical output wavelength by adjusting a single laser input independent from other laser inputs.
18. The conttol system of claim 17, wherein the single laser input is the current input to a phase section of the laser.
19. The control system of claim 17, further comprising a cooler for regulating the temperature of the laser having a cooler input and the single laser input is the cooler input.
20. The control system of claim 1, wherein the controUer controls the optical output power by adjusting a laser input interdependently with at least one other laser input.
21. The conttol system of claim 20, wherein the laser input is the current input to a gain section of the laser.
22. The conttol system of claim 20, wherein the at least one other laser input includes the current input to a phase section of the laser for stabilizing the output wavelength.
23. The control system of claim 20, wherein the at least one other laser input includes the current inputs to a front and back mirror section of the laser for reaUgning the front and back mirror sections.
24. The control system of claim 1, wherein the controUer controls the optical output wavelength by adjusting a laser input interdependently with at least one other laser input.
25. The control system of claim 24, wherein the laser input is the current input to a gain section of the laser.
26. The control system of claim 24, further comprising a cooler having a cooler input for regulating the temperature of the laser and the laser input is the cooler input.
27. The conttol system of claim 24, wherein the at least one other laser input includes the current input to a phase section of the laser for stabilizing the output wavelength.
28. The control system of claim 24, wherein the at least one other laser input includes the current inputs to a front and back mirror section of the laser for reaUgning the front and back mirror sections.
29. The control system of claim 1, wherein power and wavelength conttol is operated simultaneously with a gain voltage conttol of the laser.
30. A method of conttolling optical output power and output wavelength of a sampled grating disttibuted Bragg reflector (SGDBR) laser, comprising the steps of: providing current inputs to the laser conttolling output power and output wavelength of an optical output of the laser; and receiving the optical output from the laser at an external reference and providing a reference output to the control based on the optical output; comparing the output power and output wavelength of the laser to the reference output; and locking the output power and output wavelength of the laser to the external reference.
31. The method of claim 30, wherein the current inputs are separately provided to a front mirror section, a gain section, a phase section and a back mirror section of the laser.
32. The method of claim 30, wherein the current the controUer further comprises current sources providing each current input for separate sections of the laser.
33. The method of claim 32, wherein the current sources comprise digital to analog converters separately couple to voltage to current ampHfiers providing the current inputs for the separate sections of the laser.
34. The method of claim 32, further comprising a compensation circuit to conttol a drift of at least one controUer current source.
35. The method of claim 32, further comprising a compensation circuit to conttol a drift caused by long-term degradation of the laser.
36. The method of claim 32, further comprising a compensation circuit to control a drift caused by temperature.
37. The method of claim 30, wherein the controUer further comprises a aging model including values which correspond to the current inputs to conttol the laser.
38. The method of claim 37, wherein the values of the aging model control the laser operating power and wavelength.
39. The method of claim 37, wherein the values of the aging model are based upon a initial caHbration of the laser.
40. The method of claim 37, wherein the values of the aging model are updated based upon the comparison of the optical output power and output wavelength of the laser to the reference output.
41. The method of claim 40, wherein updated values correspond a present operating power and wavelength.
42. The method of claim 40, wherein updating the values includes using a formula based upon an initial caHbration to determine the values corresponding to various operating powers and wavelengths.
43. The method of claim 30, wherein the controUer controls the optical output power by adjusting a single laser input independent from other laser inputs.
44. The method of claim 43, wherein the single laser input is the current input to a gain section of the laser.
45. The method of claim 43, wherein the single laser input is the current input to an optical ampHfier section of the laser.
46. The method of claim 30, wherein the controUer controls the optical output wavelength by adjusting a single laser input independent from other laser inputs.
47. The method of claim 46, wherein the single laser input is the current input to a phase section of the laser.
48. The method of claim 46, further comprising a cooler for regulating the temperature of the laser having a cooler input and the single laser input is the cooler input.
49. The method of claim 30, wherein the controUer controls the optical output power by adjusting a laser input interdependently with at least one other laser input.
50. The method of claim 49, wherein the laser input is the current input to a gain section of the laser.
51. The method of claim 49, wherein the at least one other laser input includes the current input to a phase section of the laser for stabilizing the output wavelength.
52. The method of claim 49, wherein the at least one other laser input includes the current inputs to a front and back mirror section of the laser for reaUgning the front and back mirror sections.
53. The method of claim 30, wherein the controUer controls the optical output wavelength by adjusting a laser input interdependently with at least one other laser input.
54. The method of claim 53, wherein the laser input is the current input to a gain section of the laser.
55. The method of claim 53, further comprising a cooler having a cooler input for regulating the temperature of the laser and the laser input is the cooler input.
56. The method of claim 53, wherein the at least one other laser input includes the current input to a phase section of the laser for stabilizing the output wavelength.
57. The method of claim 53, wherein the at least one other laser input includes the current inputs to a front and back mirror section of the laser for reaUgning the front and back mirror sections.
58. The method of claim 30, wherein power and wavelength conttol is operated simultaneously with a gain voltage control of the laser.
59. An article of manufacture embodying the logic to perform a method of controlHng a sampled grating disttibuted Bragg reflector (SGDBR) laser comprising the steps of: providing current inputs to the laser conttolling output power and output wavelength of an optical output of the laser; and receiving the optical output from the laser at an external reference and providing a reference output to the conttol; comparing the output power and output wavelength of the laser to the reference output; and locking the output power and output wavelength of the laser to the external reference.
60. The article of claim 59, wherein the current inputs are separately provided to a front mirror section, a gain section, a phase section and a back mirror section of the laser.
61. The article of claim 59, wherein the current the controUer further comprises current sources providing each current input for separate sections of the laser.
62. The article of claim 61, wherein the current sources comprise digital to analog converters separately couple to voltage to current ampHfiers providing the current inputs for the separate sections of the laser.
63. The article of claim 61, further comprising a compensation circuit to control a drift of at least one controUer current source.
64. The article of claim 61, further comprising a compensation circuit to control a drift caused by long-term degradation of the laser.
65. The article of claim 61, further comprising a compensation circuit to control a drift caused by temperature.
66. The article of claim 59, wherein the controUer further comprises a aging model including values which correspond to the current inputs to conttol the laser.
67. The article of claim 66, wherein the values of the aging model control the laser operating power and wavelength.
68. The article of claim 66, wherein the values of the aging model are based upon a initial caHbration of the laser.
69. The article of claim 66, wherein the values of the aging model are updated based upon the comparison of the optical output power and output wavelength of the laser to the reference output.
70. The article of claim 69, wherein updated values correspond a present operating power and wavelength.
71. The article of claim 69, wherein updating the values includes using a formula based upon an initial caHbration to determine the values corresponding to various operating powers and wavelengths.
72. The article of claim 59, wherein the controUer controls the optical output power by adjusting a single laser input independent from other laser inputs.
73. The article of claim 72, wherein the single laser input is the current input to a gain section of the laser.
74. The article of claim 72, wherein the single laser input is the current input to an optical ampHfier section of the laser.
75. The article of claim 59, wherein the controUer controls the optical output wavelength by adjusting a single laser input independent from other laser inputs.
76. The article of claim 75, wherein the single laser input is the current input to a phase section of the laser.
77. The article of claim 75, further comprising a cooler for regulating the temperature of the laser having a cooler input and the single laser input is the cooler input.
78. The article of claim 59, wherein the controUer controls the optical output power by adjusting a laser input interdependently with at least one other laser input.
79. The article of claim 78, wherein the laser input is the current input to a gain section of the laser.
80. The article of claim 78, wherein the at least one other laser input includes the current input to a phase section of the laser for stabilizing the output wavelength.
81. The article of claim 78, wherein the at least one other laser input includes the current inputs to a front and back mirror section of the laser for reaUgning the front and back mirror sections.
82. The article of claim 59, wherein the controUer controls the optical output wavelength by adjusting a laser input interdependently with at least one other laser input.
83. The article of claim 82, wherein the laser input is the current input to a gain section of the laser.
84. The article of claim 82, further comprising a cooler having a cooler input for regulating the temperature of the laser and the laser input is the cooler input.
85. The article of claim 82, wherein the at least one other laser input includes the current input to a phase section of the laser for stabilizing the output wavelength.
86. The article of claim 82, wherein the at least one other laser input includes the current inputs to a front and back mirror section of the laser for reaUgning the front and back mirror sections.
87. The article of claim 59, wherein power and wavelength control is operated simultaneously with a gain voltage conttol of the laser.
PCT/US2001/020725 2000-06-29 2001-06-29 Power and wavelength control of sampled grating distributed bragg reflector lasers WO2002003514A2 (en)

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WO1999040654A1 (en) * 1998-01-21 1999-08-12 Altitun Ab Method of optimizing the operation points of lasers and means for carrying out the method

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