Optical phase-sensitive amplifier with fiber bragg grating phase shifter

US9997887B1 · US · B1

Patent metadata
FieldValue
Publication numberUS-9997887-B1
Application numberUS-201715426811-A
CountryUS
Kind codeB1
Filing dateFeb 7, 2017
Priority dateFeb 7, 2017
Publication dateJun 12, 2018
Grant dateJun 12, 2018

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  1. Title

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  2. Abstract

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  5. First independent claim

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  6. CPC / IPC classifications

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Abstract

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Fiber Bragg gratings (FBG) may be used to perform phase adjustment for optimal phase-sensitive amplification. Specifically, FBGs may be used between the idler stage and the amplification stage of an optical phase-sensitive amplifier for phase shifting or tuning. The phase shifting or tuning may be applied to at least one of an input optical signal, an idler signal, and an optical pump. A feedback control loop may be used in the phase-sensitive optical amplifier with respect to an output optical signal for optimal phase adjustment.

First claim

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What is claimed is: 1. An optical system for phase-sensitive amplification of optical signals, the optical system comprising: an input optical signal; a phase-sensitive amplifier (PSA) stage I receiving the input optical signal, wherein the PSA stage I comprises a first non-linear optical element (NLE) through which the input optical signal and a first pump wavelength are passed to generate a PSA stage I optical signal comprising the input optical signal, the first pump wavelength, and an idler signal generated using the first NLE; a fiber Bragg grating (FBG) receiving the PSA stage I optical signal, wherein the FBG includes a plurality of FBG elements, including a first FBG element configured to apply a first phase shift to at least one of the input optical signal, the first pump wavelength, and the idler signal, wherein the FBG outputs the PSA stage I optical signal with the first phase shift as a PSA stage II optical signal, and wherein the input optical signal, the first pump wavelength, and the idler signal are phase-matched in the PSA stage II optical signal; and a feedback control loop from the PSA stage II to the FBG, wherein the feedback control loop is used to spectrally align the first phase shift. 2. The optical system of claim 1 , further comprising: a PSA stage II receiving the PSA stage II optical signal, wherein the PSA stage II comprises a second NLE through which the PSA stage II optical signal is amplified to generate an output optical signal. 3. The optical system of claim 2 , wherein the PSA stage II further comprises: a Raman amplifier; and a second pump wavelength for transmission through the Raman amplifier in a counter propagating direction to the PSA stage II signal. 4. The optical system of claim 1 , wherein the input optical signal comprises one optical channel, and wherein the first FBG element applies the first phase shift to the first pump wavelength. 5. The optical system of claim 1 , wherein the input optical signal comprises a wavelength division multiplexed (WDM) optical signal, including a first optical channel, and wherein the first FBG element applies the first phase shift to a first idler signal that is a conjugate of the first optical channel. 6. The optical system of claim 1 , further comprising: a first heating element associated with the first FBG element, wherein the first heating element is used to control a local temperature of the first FBG element to control the first phase shift. 7. The optical system of claim 6 , further comprising: a plurality of heating elements respectively corresponding to the FBG elements, wherein each of the FBG elements applies a respective phase shift to the PSA stage I optical signal. 8. The optical system of claim 1 , further comprising: a first tension element associated with the first FBG element, wherein the first tension element is used to control a local strain of the first FBG element to control the first phase shift. 9. The optical system of claim 8 , further comprising: a plurality of tension elements respectively corresponding to the FBG elements, wherein each of the FBG elements applies a respective phase shift to the PSA stage I optical signal. 10. A phase-sensitive amplifier, comprising: a phase-sensitive amplifier (PSA) stage I receiving an input optical signal, wherein the PSA stage I comprises a first non-linear optical element (NLE) through which the input WDM optical signal and a first pump wavelength are passed to generate a PSA stage I optical signal comprising the input optical signal, the first pump wavelength, and an idler signal generated using the first NLE; a fiber Bragg grating (FBG) receiving the PSA stage I optical signal, wherein the FBG includes a plurality of FBG elements, including a first FBG element configured to apply a first phase shift to at least one of the input optical signal, the first pump wavelength, and the idler signal, wherein the FBG outputs the PSA stage I optical signal with the first phase shift as a PSA stage II optical signal, and wherein the input optical signal, the first pump wavelength, and the idler signal are phase-matched in the PSA stage II optical signal; and a feedback control loop from the PSA stage II to the FBG, wherein the feedback control loop is used to spectrally align the first phase shift. 11. The phase-sensitive amplifier of claim 10 , further comprising: a PSA stage II receiving the PSA stage II optical signal, wherein the PSA stage II comprises a second NLE through which the PSA stage II optical signal is amplified to generate an output optical signal. 12. The phase-sensitive amplifier of claim 11 , wherein the PSA stage II further comprises: a Raman amplifier; and a second pump wavelength for transmission through the Raman amplifier in a counter propagating direction to the PSA stage II signal. 13. The phase-sensitive amplifier of claim 10 , wherein the input optical signal comprises one optical channel, and wherein the first FBG element applies the first phase shift to the first pump wavelength. 14. The phase-sensitive amplifier of claim 10 , wherein the input optical signal comprises a plurality of optical channels, including a first optical channel, and wherein the first FBG element applies the first phase shift to a first idler signal that is a conjugate of the first optical channel. 15. The phase-sensitive amplifier of claim 10 , further comprising: a first heating element associated with the first FBG element, wherein the first heating element is used to control a local temperature of the first FBG element to control the first phase shift. 16. The phase-sensitive amplifier of claim 15 , further comprising: a plurality of heating elements respectively corresponding to the FBG elements, wherein each of the FBG elements applies a respective phase shift to the PSA stage I optical signal. 17. The phase-sensitive amplifier of claim 10 , further comprising: a first tension element associated with the first FBG element, wherein the first tension element is used to control a local strain of the first FBG element to control the first phase shift. 18. The phase-sensitive amplifier of claim 17 , further comprising: a plurality of tension elements respectively corresponding to the FBG elements, wherein each of the FBG elements applies a respective phase shift to the PSA stage I optical signal.

Assignees

Inventors

Classifications

  • the pumped medium being a fibre · CPC title

  • H01S3/005Primary

    Optical devices external to the laser cavity, specially adapted for lasers, e.g. for homogenisation of the beam or for manipulating laser pulses, e.g. pulse shaping (shaping laser beam for working metal or other materials B23K26/06; optical elements, systems or apparatus in general G02B) · CPC title

  • Arrangements therefor · CPC title

  • H01S3/1003Primary

    tunable optical elements, e.g. acousto-optic filters, tunable gratings · CPC title

  • using Bragg gratings · CPC title

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What does patent US9997887B1 cover?
Fiber Bragg gratings (FBG) may be used to perform phase adjustment for optimal phase-sensitive amplification. Specifically, FBGs may be used between the idler stage and the amplification stage of an optical phase-sensitive amplifier for phase shifting or tuning. The phase shifting or tuning may be applied to at least one of an input optical signal, an idler signal, and an optical pump. A feedba…
Who is the assignee on this patent?
Fujitsu Ltd
What technology area does this patent fall under?
Primary CPC classification H01S3/005. Mapped technology areas include Electricity.
When was this patent published?
Publication date Tue Jun 12 2018 00:00:00 GMT+0000 (Coordinated Universal Time) (B1). Legal status and post-grant events are not shown on this page.
What related patents are in patentsdb?
We list 1 related publication on this page (citations in our corpus or others sharing the same primary CPC).