US20030081298A1 - Method and system for controlling the output of an optical pump energy source - Google Patents
Method and system for controlling the output of an optical pump energy source Download PDFInfo
- Publication number
- US20030081298A1 US20030081298A1 US10/003,766 US376601A US2003081298A1 US 20030081298 A1 US20030081298 A1 US 20030081298A1 US 376601 A US376601 A US 376601A US 2003081298 A1 US2003081298 A1 US 2003081298A1
- Authority
- US
- United States
- Prior art keywords
- optical
- control signal
- signal
- detector
- communication signal
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Granted
Links
Images
Classifications
-
- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04B—TRANSMISSION
- H04B10/00—Transmission systems employing electromagnetic waves other than radio-waves, e.g. infrared, visible or ultraviolet light, or employing corpuscular radiation, e.g. quantum communication
- H04B10/29—Repeaters
- H04B10/291—Repeaters in which processing or amplification is carried out without conversion of the main signal from optical form
-
- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01S—DEVICES USING THE PROCESS OF LIGHT AMPLIFICATION BY STIMULATED EMISSION OF RADIATION [LASER] TO AMPLIFY OR GENERATE LIGHT; DEVICES USING STIMULATED EMISSION OF ELECTROMAGNETIC RADIATION IN WAVE RANGES OTHER THAN OPTICAL
- H01S3/00—Lasers, i.e. devices using stimulated emission of electromagnetic radiation in the infrared, visible or ultraviolet wave range
- H01S3/10—Controlling the intensity, frequency, phase, polarisation or direction of the emitted radiation, e.g. switching, gating, modulating or demodulating
- H01S3/13—Stabilisation of laser output parameters, e.g. frequency or amplitude
- H01S3/1305—Feedback control systems
-
- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01S—DEVICES USING THE PROCESS OF LIGHT AMPLIFICATION BY STIMULATED EMISSION OF RADIATION [LASER] TO AMPLIFY OR GENERATE LIGHT; DEVICES USING STIMULATED EMISSION OF ELECTROMAGNETIC RADIATION IN WAVE RANGES OTHER THAN OPTICAL
- H01S3/00—Lasers, i.e. devices using stimulated emission of electromagnetic radiation in the infrared, visible or ultraviolet wave range
- H01S3/10—Controlling the intensity, frequency, phase, polarisation or direction of the emitted radiation, e.g. switching, gating, modulating or demodulating
- H01S3/13—Stabilisation of laser output parameters, e.g. frequency or amplitude
- H01S3/131—Stabilisation of laser output parameters, e.g. frequency or amplitude by controlling the active medium, e.g. by controlling the processes or apparatus for excitation
- H01S3/1312—Stabilisation of laser output parameters, e.g. frequency or amplitude by controlling the active medium, e.g. by controlling the processes or apparatus for excitation by controlling the optical pumping
Definitions
- the present invention generally relates to the field of electro-optics and more specifically to controlling the amplification of an optical communication signal.
- SNR signal-to-noise ratio
- FIG. 1 shows a typical optical receiver system 100 which includes a photo detector 105 whose electrical output is coupled to a transimpedance amplifier (TIA) 110 .
- the TIA serves to convert the photo detector signal current into an amplified voltage suitable for signal processing.
- the overall SNR of the receiver system 100 is statistically determined by the noise contributed by both the photo detector 105 and the TIA 110 . If the photo detector 105 is a positive-intrinsic-negative (PIN) photodiode, with a gain M of 1, both the TIA 110 and photo detector 105 will contribute to the overall receiver system noise figure.
- PIN positive-intrinsic-negative
- the photo detector 105 is an APD (avalanche photo detector) photodiode, with a gain M of 10 to 20, the noise contributed by the TIA 110 will not prove as critical.
- APD active photo detector
- F total F apd +[( F tia ⁇ 1)*( M apd ) ⁇ 1 ]
- F total is the total noise factor of the combined photo detector 105 and TIA 110
- F apd is the noise factor of the APD photodiode (typical value of 5 or 6)
- T tia is the noise factor of the TIA 110 .
- the high gain provided by the first stage in this case an APD photodiode (M apd ), reduces the effect of noise contributed by the TIA 110 .
- the key is to identify a first stage component device that provides high gain while contributing low noise.
- the erbium amplifier will provide power gains of 20 dB (Gain of 100) to 30 dB (Gain of 1000) with relatively modest pump power.
- the overall gain of the amplifier can be scaled either with a variation of fiber length or adjustment of pump power. It is this characteristic of high gain with relatively low noise factor that justifies the possible utilization of an erbium fiber system as a photodiode optical preamplifier stage.
- the primary noise source in erbium receiver systems is amplified spontaneous emission (ASE) noise produced by the interaction of the pump energy source with the erbium doped fiber optic cable used in the system.
- FIG. 2 shows that ASE noise is generally specified as a quantity of spectral noise power over a given optical bandwidth.
- the spectral noise power is distributed across the entire operational optical bandwidth of the erbium amplifier and can span a continuous wavelength region, which in this case is from 1500 nm to 1600 nm.
- a photo detector has a broad optical bandwidth response and will detect the ASE noise power across this entire band.
- an optical transmission filter is utilized to block out the majority of the ASE power outside of the signal bandwidth.
- a detector following the filter will then be sensitive only to optical energy of wavelengths centered over the filter pass-band.
- the filter operational band-pass is chosen to accommodate the spectral content of the signal.
- WDM wavelength division multiplexing
- Conventional wavelength division multiplexing (WDM) systems efficiently use bandwidth in existing fiber-optic telecommunication infrastructures.
- WDM systems employ coupler technology with very narrow bandwidth transmission characteristics. This characteristic is utilized to select or insert signals at various wavelengths into the fiber optic transmission path.
- WDM couplers are naturally suited to erbium amplifier systems since the inherent narrow pass-band characteristic of these couplers automatically filters out the ASE noise power produced by an erbium amplifying medium and intercepted by a photo detector. Additionally, as shown in FIG. 3 (from Hewlett Packard's 1999 Lightwave Test and Measurement Catalog), the overall ASE noise power is reduced as optical signals are amplified.
- the overall gain of an amplification system will be the gain product of the individual components. Since an APD provides a gain of 10 to 20, the corresponding gain required from the erbium preamplifier can be reduced. For a given length of erbium fiber, gain reduction is obtained by adjusting the level of pump power. Reducing pump power will also reduce the amount of ASE noise.
- An operational configuration of an erbium amplifier with 10 dB of gain coupled to an APD with a gain of 10 will provide an overall system gain of 100 with noise levels below that obtained from a single APD, operating near its avalanching region, in an attempt to achieve a similar gain of 100. The overall system noise factor will therefore be
- F total F erbium +[( F apd ⁇ 1)( G ain-erbium ) ⁇ 1 ].
- the very high gain obtained from the erbium preamplifier will reduce the noise contributed by the APD photo detector. System issues will dictate the selection of component gain. A TIA following the ADP photo detector may not be required except to satisfy signal translation or interface issues.
- the present invention insures that a control signal used to amplify a received optical signal has a sufficient output power level. Further, the present invention automatically optimizes system performance by maintaining a constant gain setting and adjusting the pump level for optimum pump depletion with a minimum production of ASE noise. The present invention improves the overall qualities of the amplified signal, such as broadband gain, pulse response, linearity and distortion characteristics.
- An optically pre-amplified detector component is incorporated in a receiver to provide long distance, high bandwidth, forward path link and distribution services.
- the present invention includes an enhanced optical erbium fiber amplifier used to pre-amplify an optical signal that is subsequently presented to an avalanche or PIN photodiode detector.
- the present invention is an optical system that includes a first optical detector, a second optical detector, and an optical pump energy source which outputs an optical control signal at a particular output energy level.
- an optical communication signal is received into the optical system, the communication signal is amplified using the optical control signal.
- the amplified communication signal is inputted into the first detector, the control signal is inputted into the second detector, and the energy level of the control signal is controlled based on signals outputted by the first and second detectors.
- the optical communication signal may be amplified by combining the communication signal with the control signal, routing the combined signals through an erbium doped fiber optic cable, and separating the combined signals.
- the optical communication signal may be amplified by the control signal energizing the erbium doped fiber optic cable.
- the control signal inputted into the second detector may be substantially residual pump energy which originated from the optical source and was separated from the combined signals.
- a feedback signal derived from the signals outputted by the first and second detectors, may be transmitted to control an optical device that determines the energy level of the control signal.
- the optical device may be an electronically controlled optical attenuator optically coupled to an output of the optical source through which the control signal is outputted.
- a feedback signal derived from the signals outputted by the first and second detectors, may be transmitted to control a drive current of the optical pump energy source that determines the output energy level of the optical control signal.
- the communication signal may have a first wavelength and the control signal may have a second wavelength.
- the first wavelength may be about 1550 nm and the second wavelength may be about 980 nm.
- the optical system may be an erbium doped fiber amplifier (EDFA) system.
- EDFA erbium doped fiber amplifier
- the optical system includes a system input, an optical pump energy source, and a first and second optical detector.
- the system input receives an optical communication signal.
- the optical pump energy source outputs an optical control signal at a particular output energy level.
- the communication signal is amplified using the optical control signal.
- the amplified communication signal is inputted into the first detector.
- the control signal is inputted into the second detector. Signals outputted by the first and second detectors are used to control the energy level of the control signal.
- the optical system may also include an input optical coupler, an output optical coupler, and an erbium doped fiber optic cable.
- the input optical coupler combines the communication signal with the control signal.
- the output optical coupler separates the combined signals.
- the erbium doped fiber optic cable optically couples the input and output couplers.
- the communication signal may be amplified by the control signal energizing the erbium doped fiber optic cable.
- the optical system may also include an ASE noise filter, optically coupled between the output coupler and the first detector, that filters out the ASE noise on the communication signal prior to being inputted into the first detector.
- an ASE noise filter optically coupled between the output coupler and the first detector, that filters out the ASE noise on the communication signal prior to being inputted into the first detector.
- the input and output couplers may be dichroic couplers.
- the control signal inputted into the second detector may be substantially residual pump energy which originated from the optical source and was separated from the combined signals.
- the optical system may also include variable attenuator circuit.
- the signals outputted by the first and second detectors may be used by the variable attenuator circuit to control the energy level of the control signal.
- the variable attenuator circuit may include an electronically controlled optical attenuator optically coupled to an output of the optical source through which the control signal is outputted.
- a feedback signal, derived from the signals outputted by the first and second detectors, may be transmitted to the optical attenuator to control the energy level of the control signal.
- the first detector may be either a PIN photodiode or an avalanche photodiode (ADP).
- the second detector may be a photodiode.
- the optical source may be a pump laser source.
- FIG. 1 shows a prior art optical receiver system
- FIG. 2 shows the ASE noise spectrum of a prior art erbium fiber amplifier
- FIG. 3 shows the reduction of ASE noise power as input signals are amplified in a prior art erbium fiber amplifier
- FIG. 4 shows a schematic diagram of an enhanced erbium fiber amplifier system using an electronically controlled optical attenuator in accordance with the present invention
- FIG. 5 shows a schematic diagram of an enhanced erbium fiber amplifier system using a feedback signal to control the drive current of a laser pump in accordance with the present invention
- FIG. 6 shows a flow chart diagram illustrating how a received signal is processed in accordance with the present invention.
- the present invention is an optical system 400 that employs an erbium doped fiber optic cable 405 , typically 5 to 10 meters in length, as an amplifying element.
- Optical system 400 may be an erbium doped fiber amplifier (EDFA) system.
- EDFA erbium doped fiber amplifier
- an optical communication signal 415 (e.g., having a wavelength of about 1550 nm) is received.
- Optical system 400 includes an optical pump energy source 420 (e.g., laser diode source) and an electronically controlled optical attenuator 425 which output an optical control signal 430 (e.g., having a wavelength of about 980 nm) at a particular output energy level.
- the electronically controlled optical attenuator 425 may be separate from the optical pump energy source 420 or be a component within the optical pump energy source 420 . In either case, the energy level of optical control signal 430 is variably controlled.
- Optical system 400 also includes an input dichroic optical coupler 435 (e.g., having wavelengths of 1550 nm and 980 nm) which combines the communication signal 415 and the control signal 430 .
- the combined signals are routed from the input dichroic optical coupler 435 through the erbium fiber optic cable 405 .
- the erbium fiber optic cable 405 which is employed as an amplifying element.
- the erbium fiber optic cable 405 is energized or “pumped” by the optical control signal 430 .
- an output dichroic optical coupler 440 which receives the combined signals and separates the amplified communication signal from the control signal 430 .
- the control signal 430 is routed from a coupled port of output dichroic optical coupler 440 to a monitoring detector 445 , which may be a photodiode.
- the amplified communication signal is routed from the main-line output port of the output dichroic optical coupler 440 through an ASE filter 450 to a receiving detector 455 which outputs an amplified output signal 460 from the optical system 400 .
- the receiving detector 455 may be an avalanche photodiode (ADP) or a positive-intrinsic-negative (PIN) photodiode.
- ADP avalanche photodiode
- PIN positive-intrinsic-negative
- An ADP would be a more appropriate detection component for digital applications.
- the amplified output signal 460 and an output signal from the monitoring detector 445 are analyzed by a signal processing and control circuit 465 which, based on the analysis, provides a feedback signal 470 to electronically controlled optical attenuator 425 to control the energy level of optical control signal 430 .
- the interaction of the optical control signal 430 within the erbium fiber optic cable 405 will produce a high level of ASE noise.
- the ASE noise has an optical spectral energy content (e.g., 1500 nm to 1600 nm). Since a photo detector cannot differentiate between optical spectral components, it will detect all of the energy content available within the bandwidth of the ASE noise. This detection process appears as electrical noise to post processing functions.
- the level of ASE energy available for detection, at a particular wavelength, is mitigated by the bandwidth of the ASE filter 450 incorporated prior to the receiving detector 455 .
- the wavelength of the ASE filter 450 is centered about the optical carrier signal wavelength and is considerably wider than the modulation signal bandwidth imposed on the lightwave carrier.
- the ASE energy is channeled into the signal, producing an amplified output with a relatively low level of residual ASE noise. If a signal is not present, ASE energy within the pass band of the ASE filter 450 will be detected and interpreted as noise.
- the present invention maintains a constant signal level thorough the amplifier chain, thereby converting ASE energy into signal, and minimizing ASE noise.
- the output dichroic optical coupler 440 is utilized to remove the non-depleted pump energy through the coupled port of output dichroic optical coupler 440 while allowing the amplified signal to reach the output of optical system 400 without being attenuated.
- the non-depleted pump energy is that portion of the pump excitation that was not converted to ASE energy or depleted through other material loss processes within the erbium fiber optic cable 405 .
- the coupled port of the output dichroic optical coupler 440 has a narrow band pass characteristic centered at the pump wavelength. The amplification process is brought about by the extraction and channeling of ASE energy into the signal.
- Sampling the residual, non-depleted pump energy level using monitoring detector 445 provides an indication of the efficiency of the amplification process as well as a feedback mechanism for precise control of the pump energy.
- the amount of pump energy required is governed by the optical losses in the fiber and the overall signal gain. Ideally, one would like to have all of the ASE energy converted to signal energy, a condition that is generally not achievable. Maximum gain with minimum ASE noise can be achieved with judicious active control of the pump energy level. Maintaining the pump energy at an optimum level for a desired gain setting minimizes excess ASE noise and improves system performance. Additionally, pumping the system with more energy than is necessary is not cost effective and compromises the reliability of the pump laser.
- the function of the signal processing and control circuit 465 is to acquire and process information about the amplified output signal 460 and the level of pump depletion. This information is utilized in an algorithmic process to automatically optimize system performance by maintaining a constant gain setting and adjusting the pump level for optimum pump depletion with a minimum production of ASE noise.
- the signal processing and control circuit 465 samples a portion of the amplified output signal 460 .
- the sampling function serves as an independent indicator of the level of amplified signal.
- the amplified signal contains both a lightwave and a modulation signal component.
- the sampled signal coupled with information about the level of depleted pump energy, serves as a feedback mechanism to maintain the signal at a constant level with minimal noise.
- FIG. 5 a slightly different embodiment of the present invention is practiced in an optical system 500 .
- the amplified output signal 460 and an output signal from the monitoring detector 445 are analyzed by a signal processing and control circuit 465 which, based on the analysis, provides a feedback signal 570 directly to the optical pump energy source 520 to control a drive current that determines the output energy level of optical control signal 530 .
- a signal processing and control circuit 465 which, based on the analysis, provides a feedback signal 570 directly to the optical pump energy source 520 to control a drive current that determines the output energy level of optical control signal 530 .
- an optical communication signal 415 is received (step 605 )
- the communication signal 415 is amplified using an optical control signal 430 (step 610 ).
- the amplified communication signal is inputted into a first detector (receiving detector 455 ) (step 615 ).
- the control signal is inputted into a second detector (monitoring detector 445 ) (step 620 ).
- the energy level of the control signal is then controlled (using feedback signal 470 ) based on signals outputted from the first and second detectors (step 625 ).
- the present invention may be implemented with any combination of hardware and software. If implemented as a computer-implemented apparatus, the present invention is implemented using means for performing all of the steps and functions described above.
- the present invention can be included in an article of manufacture (e.g., one or more computer program products) having, for instance, computer useable media.
- the media has embodied therein, for instance, computer readable program code means for providing and facilitating the mechanisms of the present invention.
- the article of manufacture can be included as part of a computer system or sold separately.
Landscapes
- Physics & Mathematics (AREA)
- Electromagnetism (AREA)
- Engineering & Computer Science (AREA)
- Computer Networks & Wireless Communication (AREA)
- Signal Processing (AREA)
- Lasers (AREA)
- Optical Communication System (AREA)
Abstract
Description
- 1. Field of the Invention
- The present invention generally relates to the field of electro-optics and more specifically to controlling the amplification of an optical communication signal.
- 2. Background Information
- In any communication system, ultimate reception of a given transmitted signal is governed by the overall signal-to-noise ratio (SNR) of the receiving system. The larger the SNR, the more reliable the signal detection process. A weak signal captured by a detector must compete with various internal noise sources produced by associated electronic and optical systems. External and background noise sources, typically encountered in free space communication links, provide additional noise components and are not a concern in closed fiber networks. Detection of the signal is accomplished when the signal level rises above the statistical summation of all contributory noise sources.
- Much of the investigative work involving erbium preamplifiers has been targeted to laser radar and free space communication systems where issues of low signal levels, due to poor target reflectivity and inefficient signal coupling into receiver optics, are of paramount importance. The application of erbium preamplifiers to fiber optic systems would readily enhance weak signal detection.
- FIG. 1 shows a typical
optical receiver system 100 which includes aphoto detector 105 whose electrical output is coupled to a transimpedance amplifier (TIA) 110. The TIA serves to convert the photo detector signal current into an amplified voltage suitable for signal processing. The overall SNR of thereceiver system 100 is statistically determined by the noise contributed by both thephoto detector 105 and the TIA 110. If thephoto detector 105 is a positive-intrinsic-negative (PIN) photodiode, with a gain M of 1, both the TIA 110 andphoto detector 105 will contribute to the overall receiver system noise figure. If thephoto detector 105 is an APD (avalanche photo detector) photodiode, with a gain M of 10 to 20, the noise contributed by the TIA 110 will not prove as critical. The noise factor of a receiver system employing an APD detector may be described as follows: - F total =F apd+[(F tia−1)*(M apd)−1]
- where,
- Ftotal is the total noise factor of the combined
photo detector 105 and TIA 110 - Fapd is the noise factor of the APD photodiode (typical value of 5 or 6)
- Mapd is the gain of the photodiode, M=1 for a PIN and M=10 to 20 for an APD
- Ttia is the noise factor of the TIA 110.
- The high gain provided by the first stage, in this case an APD photodiode (Mapd), reduces the effect of noise contributed by the TIA 110. The key is to identify a first stage component device that provides high gain while contributing low noise.
- The improving technology in erbium fiber amplifier technology has produced amplifier systems with relatively low 4 to 5 dB noise figures. Translated into a noise factor, the equation converts a 5 dB noise figure,
- Noise Figure=10 Log [Noise Factor(F erbium-amp)]
- into a noise factor of approximately 3.16 which is better than a typical noise factor of 5 or 6 for a standalone APD detector. Additionally the erbium amplifier will provide power gains of 20 dB (Gain of 100) to 30 dB (Gain of 1000) with relatively modest pump power. The overall gain of the amplifier can be scaled either with a variation of fiber length or adjustment of pump power. It is this characteristic of high gain with relatively low noise factor that justifies the possible utilization of an erbium fiber system as a photodiode optical preamplifier stage.
- The primary noise source in erbium receiver systems is amplified spontaneous emission (ASE) noise produced by the interaction of the pump energy source with the erbium doped fiber optic cable used in the system. FIG. 2 (from Hewlett Packard's 1999 Lightwave Test and Measurement Catalog) shows that ASE noise is generally specified as a quantity of spectral noise power over a given optical bandwidth. The spectral noise power is distributed across the entire operational optical bandwidth of the erbium amplifier and can span a continuous wavelength region, which in this case is from 1500 nm to 1600 nm. A photo detector has a broad optical bandwidth response and will detect the ASE noise power across this entire band. Since an optical signal is centered at a particular wavelength, an optical transmission filter is utilized to block out the majority of the ASE power outside of the signal bandwidth. A detector following the filter will then be sensitive only to optical energy of wavelengths centered over the filter pass-band. The filter operational band-pass is chosen to accommodate the spectral content of the signal.
- Conventional wavelength division multiplexing (WDM) systems efficiently use bandwidth in existing fiber-optic telecommunication infrastructures. WDM systems employ coupler technology with very narrow bandwidth transmission characteristics. This characteristic is utilized to select or insert signals at various wavelengths into the fiber optic transmission path. WDM couplers are naturally suited to erbium amplifier systems since the inherent narrow pass-band characteristic of these couplers automatically filters out the ASE noise power produced by an erbium amplifying medium and intercepted by a photo detector. Additionally, as shown in FIG. 3 (from Hewlett Packard's 1999 Lightwave Test and Measurement Catalog), the overall ASE noise power is reduced as optical signals are amplified.
- The overall gain of an amplification system will be the gain product of the individual components. Since an APD provides a gain of 10 to 20, the corresponding gain required from the erbium preamplifier can be reduced. For a given length of erbium fiber, gain reduction is obtained by adjusting the level of pump power. Reducing pump power will also reduce the amount of ASE noise. An operational configuration of an erbium amplifier with 10 dB of gain coupled to an APD with a gain of 10 will provide an overall system gain of 100 with noise levels below that obtained from a single APD, operating near its avalanching region, in an attempt to achieve a similar gain of 100. The overall system noise factor will therefore be
- F total =F erbium+[(F apd−1)(G ain-erbium)−1].
- The very high gain obtained from the erbium preamplifier will reduce the noise contributed by the APD photo detector. System issues will dictate the selection of component gain. A TIA following the ADP photo detector may not be required except to satisfy signal translation or interface issues.
- The present invention insures that a control signal used to amplify a received optical signal has a sufficient output power level. Further, the present invention automatically optimizes system performance by maintaining a constant gain setting and adjusting the pump level for optimum pump depletion with a minimum production of ASE noise. The present invention improves the overall qualities of the amplified signal, such as broadband gain, pulse response, linearity and distortion characteristics. An optically pre-amplified detector component is incorporated in a receiver to provide long distance, high bandwidth, forward path link and distribution services. The present invention includes an enhanced optical erbium fiber amplifier used to pre-amplify an optical signal that is subsequently presented to an avalanche or PIN photodiode detector.
- The present invention is an optical system that includes a first optical detector, a second optical detector, and an optical pump energy source which outputs an optical control signal at a particular output energy level. When an optical communication signal is received into the optical system, the communication signal is amplified using the optical control signal. The amplified communication signal is inputted into the first detector, the control signal is inputted into the second detector, and the energy level of the control signal is controlled based on signals outputted by the first and second detectors.
- The optical communication signal may be amplified by combining the communication signal with the control signal, routing the combined signals through an erbium doped fiber optic cable, and separating the combined signals.
- The optical communication signal may be amplified by the control signal energizing the erbium doped fiber optic cable. The control signal inputted into the second detector may be substantially residual pump energy which originated from the optical source and was separated from the combined signals.
- In one embodiment of the present invention, a feedback signal, derived from the signals outputted by the first and second detectors, may be transmitted to control an optical device that determines the energy level of the control signal. The optical device may be an electronically controlled optical attenuator optically coupled to an output of the optical source through which the control signal is outputted.
- In another embodiment of the present invention, a feedback signal, derived from the signals outputted by the first and second detectors, may be transmitted to control a drive current of the optical pump energy source that determines the output energy level of the optical control signal.
- The communication signal may have a first wavelength and the control signal may have a second wavelength. The first wavelength may be about 1550 nm and the second wavelength may be about 980 nm.
- The optical system may be an erbium doped fiber amplifier (EDFA) system. ASE noise on the amplified communication signal may be filtered out prior to being inputted into the first detector.
- In yet another embodiment of the present invention, the optical system includes a system input, an optical pump energy source, and a first and second optical detector. The system input receives an optical communication signal. The optical pump energy source outputs an optical control signal at a particular output energy level. The communication signal is amplified using the optical control signal. The amplified communication signal is inputted into the first detector. The control signal is inputted into the second detector. Signals outputted by the first and second detectors are used to control the energy level of the control signal.
- The optical system may also include an input optical coupler, an output optical coupler, and an erbium doped fiber optic cable. The input optical coupler combines the communication signal with the control signal. The output optical coupler separates the combined signals. The erbium doped fiber optic cable optically couples the input and output couplers. The communication signal may be amplified by the control signal energizing the erbium doped fiber optic cable.
- The optical system may also include an ASE noise filter, optically coupled between the output coupler and the first detector, that filters out the ASE noise on the communication signal prior to being inputted into the first detector.
- The input and output couplers may be dichroic couplers. The control signal inputted into the second detector may be substantially residual pump energy which originated from the optical source and was separated from the combined signals.
- In yet another embodiment, the optical system may also include variable attenuator circuit. The signals outputted by the first and second detectors may be used by the variable attenuator circuit to control the energy level of the control signal. The variable attenuator circuit may include an electronically controlled optical attenuator optically coupled to an output of the optical source through which the control signal is outputted. A feedback signal, derived from the signals outputted by the first and second detectors, may be transmitted to the optical attenuator to control the energy level of the control signal.
- The first detector may be either a PIN photodiode or an avalanche photodiode (ADP). The second detector may be a photodiode. The optical source may be a pump laser source.
- The following detailed description of preferred embodiments of the present invention would be better understood when read in conjunction with the appended drawings. For the purpose of illustrating the present invention, there are shown in the drawings embodiments which are presently preferred. However, the present invention is not limited to the precise arrangements and instrumentalities shown. In the drawings:
- FIG. 1 shows a prior art optical receiver system;
- FIG. 2 shows the ASE noise spectrum of a prior art erbium fiber amplifier;
- FIG. 3 shows the reduction of ASE noise power as input signals are amplified in a prior art erbium fiber amplifier;
- FIG. 4 shows a schematic diagram of an enhanced erbium fiber amplifier system using an electronically controlled optical attenuator in accordance with the present invention;
- FIG. 5 shows a schematic diagram of an enhanced erbium fiber amplifier system using a feedback signal to control the drive current of a laser pump in accordance with the present invention; and
- FIG. 6 shows a flow chart diagram illustrating how a received signal is processed in accordance with the present invention.
- As shown in FIG. 4, the present invention is an
optical system 400 that employs an erbium dopedfiber optic cable 405, typically 5 to 10 meters in length, as an amplifying element.Optical system 400 may be an erbium doped fiber amplifier (EDFA) system. - At
input 410 ofoptical system 400, an optical communication signal 415 (e.g., having a wavelength of about 1550 nm) is received.Optical system 400 includes an optical pump energy source 420 (e.g., laser diode source) and an electronically controlledoptical attenuator 425 which output an optical control signal 430 (e.g., having a wavelength of about 980 nm) at a particular output energy level. The electronically controlledoptical attenuator 425 may be separate from the opticalpump energy source 420 or be a component within the opticalpump energy source 420. In either case, the energy level ofoptical control signal 430 is variably controlled.Optical system 400 also includes an input dichroic optical coupler 435 (e.g., having wavelengths of 1550 nm and 980 nm) which combines thecommunication signal 415 and thecontrol signal 430. The combined signals are routed from the input dichroicoptical coupler 435 through the erbiumfiber optic cable 405. The erbiumfiber optic cable 405 which is employed as an amplifying element. The erbiumfiber optic cable 405 is energized or “pumped” by theoptical control signal 430. - At the output of the erbium
fiber optic cable 405 is an output dichroicoptical coupler 440 which receives the combined signals and separates the amplified communication signal from thecontrol signal 430. Thecontrol signal 430 is routed from a coupled port of output dichroicoptical coupler 440 to a monitoring detector 445, which may be a photodiode. The amplified communication signal is routed from the main-line output port of the output dichroicoptical coupler 440 through anASE filter 450 to a receivingdetector 455 which outputs an amplifiedoutput signal 460 from theoptical system 400. The receivingdetector 455 may be an avalanche photodiode (ADP) or a positive-intrinsic-negative (PIN) photodiode. An ADP would be a more appropriate detection component for digital applications. The amplifiedoutput signal 460 and an output signal from the monitoring detector 445 are analyzed by a signal processing and control circuit 465 which, based on the analysis, provides afeedback signal 470 to electronically controlledoptical attenuator 425 to control the energy level ofoptical control signal 430. - The interaction of the
optical control signal 430 within the erbiumfiber optic cable 405 will produce a high level of ASE noise. The ASE noise has an optical spectral energy content (e.g., 1500 nm to 1600 nm). Since a photo detector cannot differentiate between optical spectral components, it will detect all of the energy content available within the bandwidth of the ASE noise. This detection process appears as electrical noise to post processing functions. The level of ASE energy available for detection, at a particular wavelength, is mitigated by the bandwidth of theASE filter 450 incorporated prior to the receivingdetector 455. The wavelength of theASE filter 450 is centered about the optical carrier signal wavelength and is considerably wider than the modulation signal bandwidth imposed on the lightwave carrier. When an input signal is present (lightwave carrier plus modulation signal), the ASE energy is channeled into the signal, producing an amplified output with a relatively low level of residual ASE noise. If a signal is not present, ASE energy within the pass band of theASE filter 450 will be detected and interpreted as noise. The present invention maintains a constant signal level thorough the amplifier chain, thereby converting ASE energy into signal, and minimizing ASE noise. - The output dichroic
optical coupler 440 is utilized to remove the non-depleted pump energy through the coupled port of output dichroicoptical coupler 440 while allowing the amplified signal to reach the output ofoptical system 400 without being attenuated. The non-depleted pump energy is that portion of the pump excitation that was not converted to ASE energy or depleted through other material loss processes within the erbiumfiber optic cable 405. The coupled port of the output dichroicoptical coupler 440 has a narrow band pass characteristic centered at the pump wavelength. The amplification process is brought about by the extraction and channeling of ASE energy into the signal. Sampling the residual, non-depleted pump energy level using monitoring detector 445 provides an indication of the efficiency of the amplification process as well as a feedback mechanism for precise control of the pump energy. The amount of pump energy required is governed by the optical losses in the fiber and the overall signal gain. Ideally, one would like to have all of the ASE energy converted to signal energy, a condition that is generally not achievable. Maximum gain with minimum ASE noise can be achieved with judicious active control of the pump energy level. Maintaining the pump energy at an optimum level for a desired gain setting minimizes excess ASE noise and improves system performance. Additionally, pumping the system with more energy than is necessary is not cost effective and compromises the reliability of the pump laser. - The function of the signal processing and control circuit465 is to acquire and process information about the amplified
output signal 460 and the level of pump depletion. This information is utilized in an algorithmic process to automatically optimize system performance by maintaining a constant gain setting and adjusting the pump level for optimum pump depletion with a minimum production of ASE noise. The signal processing and control circuit 465 samples a portion of the amplifiedoutput signal 460. The sampling function serves as an independent indicator of the level of amplified signal. The amplified signal contains both a lightwave and a modulation signal component. The sampled signal, coupled with information about the level of depleted pump energy, serves as a feedback mechanism to maintain the signal at a constant level with minimal noise. - As shown in FIG. 5, a slightly different embodiment of the present invention is practiced in an optical system500. The amplified
output signal 460 and an output signal from the monitoring detector 445 are analyzed by a signal processing and control circuit 465 which, based on the analysis, provides afeedback signal 570 directly to the optical pump energy source 520 to control a drive current that determines the output energy level ofoptical control signal 530. Thus, the use of a separate variable attenuator to control the output energy level ofoptical control signal 530 is not required. - Referring now to FIGS. 4 and 6, a method is now described in accordance with the present invention. When an
optical communication signal 415 is received (step 605), thecommunication signal 415 is amplified using an optical control signal 430 (step 610). The amplified communication signal is inputted into a first detector (receiving detector 455) (step 615). The control signal is inputted into a second detector (monitoring detector 445) (step 620). The energy level of the control signal is then controlled (using feedback signal 470) based on signals outputted from the first and second detectors (step 625). - The present invention may be implemented with any combination of hardware and software. If implemented as a computer-implemented apparatus, the present invention is implemented using means for performing all of the steps and functions described above.
- The present invention can be included in an article of manufacture (e.g., one or more computer program products) having, for instance, computer useable media. The media has embodied therein, for instance, computer readable program code means for providing and facilitating the mechanisms of the present invention. The article of manufacture can be included as part of a computer system or sold separately.
- It will be appreciated by those skilled in the art that changes could be made to the embodiments described above without departing from the broad inventive concept thereof. It is understood, therefore, that this invention is not limited to the particular embodiments disclosed, but it is intended to cover modifications within the spirit and scope of the present invention as defined by the appended claims.
Claims (27)
Priority Applications (3)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
US10/003,766 US6553159B1 (en) | 2001-10-29 | 2001-10-29 | Method and system for controlling the output of an optical pump energy source |
AU2002356836A AU2002356836A1 (en) | 2001-10-29 | 2002-10-22 | Method and system for controlling the output of an optical pump energy source |
PCT/US2002/033700 WO2003039044A2 (en) | 2001-10-29 | 2002-10-22 | Method and system for controlling the output of an optical pump energy source |
Applications Claiming Priority (1)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
US10/003,766 US6553159B1 (en) | 2001-10-29 | 2001-10-29 | Method and system for controlling the output of an optical pump energy source |
Publications (2)
Publication Number | Publication Date |
---|---|
US6553159B1 US6553159B1 (en) | 2003-04-22 |
US20030081298A1 true US20030081298A1 (en) | 2003-05-01 |
Family
ID=21707480
Family Applications (1)
Application Number | Title | Priority Date | Filing Date |
---|---|---|---|
US10/003,766 Expired - Lifetime US6553159B1 (en) | 2001-10-29 | 2001-10-29 | Method and system for controlling the output of an optical pump energy source |
Country Status (3)
Country | Link |
---|---|
US (1) | US6553159B1 (en) |
AU (1) | AU2002356836A1 (en) |
WO (1) | WO2003039044A2 (en) |
Families Citing this family (5)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
DE10146001B4 (en) * | 2001-09-18 | 2008-04-03 | Nokia Siemens Networks Gmbh & Co.Kg | Circuit arrangement and method for safety shutdown of an optical amplifier |
CA2451951A1 (en) * | 2003-12-03 | 2005-06-03 | Ibm Canada Limited-Ibm Canada Limitee | Apparatus for mounting columns for grid array electronic packages |
DE502006004077D1 (en) * | 2005-07-07 | 2009-08-06 | Nokia Siemens Networks Gmbh | MULTI-STAGE FIBER AMPLIFIER AND METHOD FOR THE AMPLIFIER |
US7667889B2 (en) * | 2007-02-21 | 2010-02-23 | Pyrophotonics Lasers Inc. | Methods and systems for gain control in pulsed optical amplifiers |
US8964801B2 (en) | 2009-06-11 | 2015-02-24 | Esi-Pyrophotonics Lasers, Inc. | Method and system for stable and tunable high power pulsed laser system |
Family Cites Families (12)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
DE4106778A1 (en) * | 1991-03-04 | 1992-09-10 | Standard Elektrik Lorenz Ag | OPTICAL-ELECTRIC CONVERTER WITH EXTENDED DYNAMICS |
US5239607A (en) * | 1992-06-23 | 1993-08-24 | Bell Communications Research, Inc. | Optical fiber amplifier with flattened gain |
JP2988261B2 (en) * | 1994-04-26 | 1999-12-13 | 日本電気株式会社 | Optical receiving circuit |
JP3442897B2 (en) * | 1995-03-08 | 2003-09-02 | Kddi株式会社 | Range-based gain control optical amplifier, range-based optical amplifier gain control method, optical receiver and optical repeater |
JPH08248455A (en) * | 1995-03-09 | 1996-09-27 | Fujitsu Ltd | Optical amplifier for wavelength multiplexing |
US6229936B1 (en) * | 1995-05-01 | 2001-05-08 | Hitachi, Ltd. | Optical amplifier, optical transmission equipment, optical transmission system, and method thereof |
JPH08331062A (en) * | 1995-06-01 | 1996-12-13 | Toshiba Corp | Optical reception circuit |
JP3770635B2 (en) * | 1995-06-20 | 2006-04-26 | 富士通株式会社 | Optical receiver having function of suppressing unwanted intensity modulation component |
KR100317452B1 (en) * | 1996-12-31 | 2002-02-19 | 이정태 | Feedback-type heterogeneous pumping optical fiber amplifier |
JPH11121849A (en) * | 1997-10-17 | 1999-04-30 | Fujitsu Ltd | Optical amplifier in optical communication device |
US6356385B1 (en) * | 1999-02-05 | 2002-03-12 | Board Of Trustees Of The Leland Standford Junior University | Inhomogeneous broadening to modify the gain of an optical amplifier |
JP3903650B2 (en) * | 1999-06-18 | 2007-04-11 | 住友電気工業株式会社 | Optical amplifier and optical amplifier control method |
-
2001
- 2001-10-29 US US10/003,766 patent/US6553159B1/en not_active Expired - Lifetime
-
2002
- 2002-10-22 AU AU2002356836A patent/AU2002356836A1/en not_active Abandoned
- 2002-10-22 WO PCT/US2002/033700 patent/WO2003039044A2/en not_active Application Discontinuation
Also Published As
Publication number | Publication date |
---|---|
US6553159B1 (en) | 2003-04-22 |
WO2003039044A2 (en) | 2003-05-08 |
AU2002356836A1 (en) | 2003-05-12 |
WO2003039044A3 (en) | 2003-12-31 |
Similar Documents
Publication | Publication Date | Title |
---|---|---|
US5703711A (en) | In-line optical amplifier | |
EP0594178B1 (en) | Method and apparatus for monitoring noise figure of optical amplifier | |
EP0395277B1 (en) | Optical amplifier gain control | |
CA2227247C (en) | Broadband flat gain optical amplifier | |
US4918396A (en) | Monitoring and/or control of optical amplifiers | |
US20070258722A1 (en) | Optical receiver | |
US7657187B2 (en) | Optical transmission apparatus and optical transmission control method for wavelength-division-multiplexed optical signal | |
US6407854B1 (en) | Fiber amplifier with fast transient response and constant gain | |
JP2004120669A (en) | Optical receiver | |
CA2062216C (en) | Optical-to-electric transducer with extended dynamic range | |
JPH07221712A (en) | Adjusted optical amplifier | |
US20040008984A1 (en) | Automatic dark current compensation | |
JP2988261B2 (en) | Optical receiving circuit | |
US6384948B1 (en) | High-sensitivity, high-speed digital optical photoreceiver | |
US6553159B1 (en) | Method and system for controlling the output of an optical pump energy source | |
RU2146069C1 (en) | Method and erbium-doped optical-fiber amplifier for automatic tracking and filtering of wavelength of optical signal being transmitted | |
FR2777142A1 (en) | OPTICAL AMPLIFIER FOR CONSTANTLY ADJUSTING THE OUTPUT POWER PER CHANNEL AND METHOD THEREOF | |
JP2746776B2 (en) | Optical preamplifier | |
JP2004095857A (en) | Optical amplifier, method and circuit for controlling gain of the amplifier | |
US6441952B1 (en) | Apparatus and method for channel monitoring in a hybrid distributed Raman/EDFA optical amplifier | |
EP1480305B1 (en) | Semiconductor optical amplifier module | |
JP2000244417A (en) | Optical pre-amplifier | |
US7453628B2 (en) | Optical amplifier having wide dynamic range | |
JP3882375B2 (en) | Optical receiver circuit | |
JPH07202311A (en) | Wavelength stabilizing method for light semiconductor laser device |
Legal Events
Date | Code | Title | Description |
---|---|---|---|
AS | Assignment |
Owner name: GENERAL INSTRUMENT CORPORATION, PENNSYLVANIA Free format text: ASSIGNMENT OF ASSIGNORS INTEREST;ASSIGNOR:RAITI, PETER A.;REEL/FRAME:012355/0159 Effective date: 20011026 |
|
STCF | Information on status: patent grant |
Free format text: PATENTED CASE |
|
FPAY | Fee payment |
Year of fee payment: 4 |
|
FPAY | Fee payment |
Year of fee payment: 8 |
|
AS | Assignment |
Owner name: BANK OF AMERICA, N.A., AS ADMINISTRATIVE AGENT, IL Free format text: SECURITY AGREEMENT;ASSIGNORS:ARRIS GROUP, INC.;ARRIS ENTERPRISES, INC.;ARRIS SOLUTIONS, INC.;AND OTHERS;REEL/FRAME:030498/0023 Effective date: 20130417 Owner name: BANK OF AMERICA, N.A., AS ADMINISTRATIVE AGENT, ILLINOIS Free format text: SECURITY AGREEMENT;ASSIGNORS:ARRIS GROUP, INC.;ARRIS ENTERPRISES, INC.;ARRIS SOLUTIONS, INC.;AND OTHERS;REEL/FRAME:030498/0023 Effective date: 20130417 |
|
FPAY | Fee payment |
Year of fee payment: 12 |
|
AS | Assignment |
Owner name: ARRIS TECHNOLOGY, INC., GEORGIA Free format text: MERGER AND CHANGE OF NAME;ASSIGNOR:GENERAL INSTRUMENT CORPORATION;REEL/FRAME:035176/0620 Effective date: 20150101 Owner name: ARRIS TECHNOLOGY, INC., GEORGIA Free format text: MERGER AND CHANGE OF NAME;ASSIGNORS:GENERAL INSTRUMENT CORPORATION;GENERAL INSTRUMENT CORPORATION;REEL/FRAME:035176/0620 Effective date: 20150101 |
|
AS | Assignment |
Owner name: ARRIS ENTERPRISES, INC., GEORGIA Free format text: ASSIGNMENT OF ASSIGNORS INTEREST;ASSIGNOR:ARRIS TECHNOLOGY, INC;REEL/FRAME:037328/0341 Effective date: 20151214 |
|
AS | Assignment |
Owner name: ARRIS ENTERPRISES, INC., PENNSYLVANIA Free format text: TERMINATION AND RELEASE OF SECURITY INTEREST IN PATENTS;ASSIGNOR:BANK OF AMERICA, N.A., AS ADMINISTRATIVE AGENT;REEL/FRAME:048825/0294 Effective date: 20190404 Owner name: BIG BAND NETWORKS, INC., PENNSYLVANIA Free format text: TERMINATION AND RELEASE OF SECURITY INTEREST IN PATENTS;ASSIGNOR:BANK OF AMERICA, N.A., AS ADMINISTRATIVE AGENT;REEL/FRAME:048825/0294 Effective date: 20190404 Owner name: AEROCAST, INC., PENNSYLVANIA Free format text: TERMINATION AND RELEASE OF SECURITY INTEREST IN PATENTS;ASSIGNOR:BANK OF AMERICA, N.A., AS ADMINISTRATIVE AGENT;REEL/FRAME:048825/0294 Effective date: 20190404 Owner name: BROADBUS TECHNOLOGIES, INC., PENNSYLVANIA Free format text: TERMINATION AND RELEASE OF SECURITY INTEREST IN PATENTS;ASSIGNOR:BANK OF AMERICA, N.A., AS ADMINISTRATIVE AGENT;REEL/FRAME:048825/0294 Effective date: 20190404 Owner name: GENERAL INSTRUMENT AUTHORIZATION SERVICES, INC., P Free format text: TERMINATION AND RELEASE OF SECURITY INTEREST IN PATENTS;ASSIGNOR:BANK OF AMERICA, N.A., AS ADMINISTRATIVE AGENT;REEL/FRAME:048825/0294 Effective date: 20190404 Owner name: POWER GUARD, INC., PENNSYLVANIA Free format text: TERMINATION AND RELEASE OF SECURITY INTEREST IN PATENTS;ASSIGNOR:BANK OF AMERICA, N.A., AS ADMINISTRATIVE AGENT;REEL/FRAME:048825/0294 Effective date: 20190404 Owner name: MODULUS VIDEO, INC., PENNSYLVANIA Free format text: TERMINATION AND RELEASE OF SECURITY INTEREST IN PATENTS;ASSIGNOR:BANK OF AMERICA, N.A., AS ADMINISTRATIVE AGENT;REEL/FRAME:048825/0294 Effective date: 20190404 Owner name: SETJAM, INC., PENNSYLVANIA Free format text: TERMINATION AND RELEASE OF SECURITY INTEREST IN PATENTS;ASSIGNOR:BANK OF AMERICA, N.A., AS ADMINISTRATIVE AGENT;REEL/FRAME:048825/0294 Effective date: 20190404 Owner name: CCE SOFTWARE LLC, PENNSYLVANIA Free format text: TERMINATION AND RELEASE OF SECURITY INTEREST IN PATENTS;ASSIGNOR:BANK OF AMERICA, N.A., AS ADMINISTRATIVE AGENT;REEL/FRAME:048825/0294 Effective date: 20190404 Owner name: GIC INTERNATIONAL CAPITAL LLC, PENNSYLVANIA Free format text: TERMINATION AND RELEASE OF SECURITY INTEREST IN PATENTS;ASSIGNOR:BANK OF AMERICA, N.A., AS ADMINISTRATIVE AGENT;REEL/FRAME:048825/0294 Effective date: 20190404 Owner name: ACADIA AIC, INC., PENNSYLVANIA Free format text: TERMINATION AND RELEASE OF SECURITY INTEREST IN PATENTS;ASSIGNOR:BANK OF AMERICA, N.A., AS ADMINISTRATIVE AGENT;REEL/FRAME:048825/0294 Effective date: 20190404 Owner name: MOTOROLA WIRELINE NETWORKS, INC., PENNSYLVANIA Free format text: TERMINATION AND RELEASE OF SECURITY INTEREST IN PATENTS;ASSIGNOR:BANK OF AMERICA, N.A., AS ADMINISTRATIVE AGENT;REEL/FRAME:048825/0294 Effective date: 20190404 Owner name: ARRIS GROUP, INC., PENNSYLVANIA Free format text: TERMINATION AND RELEASE OF SECURITY INTEREST IN PATENTS;ASSIGNOR:BANK OF AMERICA, N.A., AS ADMINISTRATIVE AGENT;REEL/FRAME:048825/0294 Effective date: 20190404 Owner name: LEAPSTONE SYSTEMS, INC., PENNSYLVANIA Free format text: TERMINATION AND RELEASE OF SECURITY INTEREST IN PATENTS;ASSIGNOR:BANK OF AMERICA, N.A., AS ADMINISTRATIVE AGENT;REEL/FRAME:048825/0294 Effective date: 20190404 Owner name: GENERAL INSTRUMENT CORPORATION, PENNSYLVANIA Free format text: TERMINATION AND RELEASE OF SECURITY INTEREST IN PATENTS;ASSIGNOR:BANK OF AMERICA, N.A., AS ADMINISTRATIVE AGENT;REEL/FRAME:048825/0294 Effective date: 20190404 Owner name: ARRIS KOREA, INC., PENNSYLVANIA Free format text: TERMINATION AND RELEASE OF SECURITY INTEREST IN PATENTS;ASSIGNOR:BANK OF AMERICA, N.A., AS ADMINISTRATIVE AGENT;REEL/FRAME:048825/0294 Effective date: 20190404 Owner name: ARRIS HOLDINGS CORP. OF ILLINOIS, INC., PENNSYLVAN Free format text: TERMINATION AND RELEASE OF SECURITY INTEREST IN PATENTS;ASSIGNOR:BANK OF AMERICA, N.A., AS ADMINISTRATIVE AGENT;REEL/FRAME:048825/0294 Effective date: 20190404 Owner name: GIC INTERNATIONAL HOLDCO LLC, PENNSYLVANIA Free format text: TERMINATION AND RELEASE OF SECURITY INTEREST IN PATENTS;ASSIGNOR:BANK OF AMERICA, N.A., AS ADMINISTRATIVE AGENT;REEL/FRAME:048825/0294 Effective date: 20190404 Owner name: ARRIS SOLUTIONS, INC., PENNSYLVANIA Free format text: TERMINATION AND RELEASE OF SECURITY INTEREST IN PATENTS;ASSIGNOR:BANK OF AMERICA, N.A., AS ADMINISTRATIVE AGENT;REEL/FRAME:048825/0294 Effective date: 20190404 Owner name: TEXSCAN CORPORATION, PENNSYLVANIA Free format text: TERMINATION AND RELEASE OF SECURITY INTEREST IN PATENTS;ASSIGNOR:BANK OF AMERICA, N.A., AS ADMINISTRATIVE AGENT;REEL/FRAME:048825/0294 Effective date: 20190404 Owner name: THE GI REALTY TRUST 1996, PENNSYLVANIA Free format text: TERMINATION AND RELEASE OF SECURITY INTEREST IN PATENTS;ASSIGNOR:BANK OF AMERICA, N.A., AS ADMINISTRATIVE AGENT;REEL/FRAME:048825/0294 Effective date: 20190404 Owner name: UCENTRIC SYSTEMS, INC., PENNSYLVANIA Free format text: TERMINATION AND RELEASE OF SECURITY INTEREST IN PATENTS;ASSIGNOR:BANK OF AMERICA, N.A., AS ADMINISTRATIVE AGENT;REEL/FRAME:048825/0294 Effective date: 20190404 Owner name: IMEDIA CORPORATION, PENNSYLVANIA Free format text: TERMINATION AND RELEASE OF SECURITY INTEREST IN PATENTS;ASSIGNOR:BANK OF AMERICA, N.A., AS ADMINISTRATIVE AGENT;REEL/FRAME:048825/0294 Effective date: 20190404 Owner name: JERROLD DC RADIO, INC., PENNSYLVANIA Free format text: TERMINATION AND RELEASE OF SECURITY INTEREST IN PATENTS;ASSIGNOR:BANK OF AMERICA, N.A., AS ADMINISTRATIVE AGENT;REEL/FRAME:048825/0294 Effective date: 20190404 Owner name: 4HOME, INC., PENNSYLVANIA Free format text: TERMINATION AND RELEASE OF SECURITY INTEREST IN PATENTS;ASSIGNOR:BANK OF AMERICA, N.A., AS ADMINISTRATIVE AGENT;REEL/FRAME:048825/0294 Effective date: 20190404 Owner name: NETOPIA, INC., PENNSYLVANIA Free format text: TERMINATION AND RELEASE OF SECURITY INTEREST IN PATENTS;ASSIGNOR:BANK OF AMERICA, N.A., AS ADMINISTRATIVE AGENT;REEL/FRAME:048825/0294 Effective date: 20190404 Owner name: NEXTLEVEL SYSTEMS (PUERTO RICO), INC., PENNSYLVANI Free format text: TERMINATION AND RELEASE OF SECURITY INTEREST IN PATENTS;ASSIGNOR:BANK OF AMERICA, N.A., AS ADMINISTRATIVE AGENT;REEL/FRAME:048825/0294 Effective date: 20190404 Owner name: GENERAL INSTRUMENT INTERNATIONAL HOLDINGS, INC., P Free format text: TERMINATION AND RELEASE OF SECURITY INTEREST IN PATENTS;ASSIGNOR:BANK OF AMERICA, N.A., AS ADMINISTRATIVE AGENT;REEL/FRAME:048825/0294 Effective date: 20190404 Owner name: QUANTUM BRIDGE COMMUNICATIONS, INC., PENNSYLVANIA Free format text: TERMINATION AND RELEASE OF SECURITY INTEREST IN PATENTS;ASSIGNOR:BANK OF AMERICA, N.A., AS ADMINISTRATIVE AGENT;REEL/FRAME:048825/0294 Effective date: 20190404 Owner name: SUNUP DESIGN SYSTEMS, INC., PENNSYLVANIA Free format text: TERMINATION AND RELEASE OF SECURITY INTEREST IN PATENTS;ASSIGNOR:BANK OF AMERICA, N.A., AS ADMINISTRATIVE AGENT;REEL/FRAME:048825/0294 Effective date: 20190404 Owner name: NEXTLEVEL SYSTEMS (PUERTO RICO), INC., PENNSYLVANIA Free format text: TERMINATION AND RELEASE OF SECURITY INTEREST IN PATENTS;ASSIGNOR:BANK OF AMERICA, N.A., AS ADMINISTRATIVE AGENT;REEL/FRAME:048825/0294 Effective date: 20190404 Owner name: GENERAL INSTRUMENT AUTHORIZATION SERVICES, INC., PENNSYLVANIA Free format text: TERMINATION AND RELEASE OF SECURITY INTEREST IN PATENTS;ASSIGNOR:BANK OF AMERICA, N.A., AS ADMINISTRATIVE AGENT;REEL/FRAME:048825/0294 Effective date: 20190404 Owner name: GENERAL INSTRUMENT INTERNATIONAL HOLDINGS, INC., PENNSYLVANIA Free format text: TERMINATION AND RELEASE OF SECURITY INTEREST IN PATENTS;ASSIGNOR:BANK OF AMERICA, N.A., AS ADMINISTRATIVE AGENT;REEL/FRAME:048825/0294 Effective date: 20190404 Owner name: ARRIS HOLDINGS CORP. OF ILLINOIS, INC., PENNSYLVANIA Free format text: TERMINATION AND RELEASE OF SECURITY INTEREST IN PATENTS;ASSIGNOR:BANK OF AMERICA, N.A., AS ADMINISTRATIVE AGENT;REEL/FRAME:048825/0294 Effective date: 20190404 |
|
AS | Assignment |
Owner name: ARRIS ENTERPRISES LLC, GEORGIA Free format text: CHANGE OF NAME;ASSIGNOR:ARRIS ENTERPRISES, INC.;REEL/FRAME:049649/0062 Effective date: 20151231 |
|
AS | Assignment |
Owner name: WILMINGTON TRUST, NATIONAL ASSOCIATION, AS COLLATE Free format text: PATENT SECURITY AGREEMENT;ASSIGNOR:ARRIS ENTERPRISES LLC;REEL/FRAME:049820/0495 Effective date: 20190404 Owner name: JPMORGAN CHASE BANK, N.A., NEW YORK Free format text: ABL SECURITY AGREEMENT;ASSIGNORS:COMMSCOPE, INC. OF NORTH CAROLINA;COMMSCOPE TECHNOLOGIES LLC;ARRIS ENTERPRISES LLC;AND OTHERS;REEL/FRAME:049892/0396 Effective date: 20190404 Owner name: JPMORGAN CHASE BANK, N.A., NEW YORK Free format text: TERM LOAN SECURITY AGREEMENT;ASSIGNORS:COMMSCOPE, INC. OF NORTH CAROLINA;COMMSCOPE TECHNOLOGIES LLC;ARRIS ENTERPRISES LLC;AND OTHERS;REEL/FRAME:049905/0504 Effective date: 20190404 Owner name: WILMINGTON TRUST, NATIONAL ASSOCIATION, AS COLLATERAL AGENT, CONNECTICUT Free format text: PATENT SECURITY AGREEMENT;ASSIGNOR:ARRIS ENTERPRISES LLC;REEL/FRAME:049820/0495 Effective date: 20190404 |
|
AS | Assignment |
Owner name: WILMINGTON TRUST, DELAWARE Free format text: SECURITY INTEREST;ASSIGNORS:ARRIS SOLUTIONS, INC.;ARRIS ENTERPRISES LLC;COMMSCOPE TECHNOLOGIES LLC;AND OTHERS;REEL/FRAME:060752/0001 Effective date: 20211115 |
|
AS | Assignment |
Owner name: ARRIS ENTERPRISES, INC., GEORGIA Free format text: ASSIGNMENT OF ASSIGNORS INTEREST;ASSIGNOR:ARRIS TECHNOLOGY, INC.;REEL/FRAME:060791/0583 Effective date: 20151214 |