IP Library Granted Patent US 7,106,923
Granted Patent B1
US 7,106,923 · App. 11/096,022 · Granted Sep 12, 2006

Dispersion compensator

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Quick Facts
Patent No.
US 7,106,923
App. No.
11/096,022
Granted
Sep 12, 2006
Kind
B1
Abstract

Dispersion compensator apparatus comprising 1XM, MXN and NXN couplers, where the coupling ratios of the MXN and NXN couplers are selected such that the dispersion compensator provides a desired amount of dispersion compensation.

Claims (34)

1. A dispersion compensator comprising:

a first 1XM coupler:

a first MXN coupler coupled to the first 1XM coupler;

a second MXN coupler coupled to the first MXN coupler; and

a second 1XM coupler coupled to the second MXN coupler;

wherein, M and N are greater than 2, and the coupling ratios of the first MXN coupler, and the second MXN coupler are selected such that the dispersion compensator provides a desired amount of dispersion compensation, and

wherein, the first 1XM coupler and the first MXN coupler, and the second MXN coupler and the second 1XM coupler, are respectively coupled using an array of M waveguides having an adjacent waveguide path-length difference of about ΔL, and wherein, the first MXN coupler and the second MXN coupler are coupled using an array of N waveguides having an adjacent waveguide path-length difference of about 2ΔL.

2. The dispersion compensator of claim 1 , wherein the coupling ratios of the first and second MXN couplers are selected such that longer wavelengths of light propagated through the couplers are substantially coupled to longer waveguides of the array of N waveguides to provide positive dispersion compensation.

3. The dispersion compensator of claim 1 , wherein the coupling ratios of the first and second MXN couplers are selected such that shorter wavelengths of light propagated through the couplers are substantially coupled to longer waveguides of the array of N waveguides to provide negative dispersion compensation.

4. The dispersion compensator of claim 1 , wherein the coupling ratios of the first MXN coupler and the second MXN coupler are adjustable to thereby control the amount of dispersion provided by the dispersion compensator.

5. The dispersion compensator of claim 1 , wherein the first MXN coupler and the second MXN coupler each include an adjustable lens means for controlling the coupling ratio of the MXN coupler.

6. The dispersion compensator of claim 5 , wherein the adjustable lens means each comprise a thermo-optic lens.

7. The dispersion compensator of claim 5 , wherein the adjustable lens means each comprise a plurality of phase shifters.

8. The dispersion compensator of claim 1 , further comprising a half-wave plate operatively coupled between the first and second MXN couplers such that the dispersion compensator provides substantially polarization-independent dispersion compensation.

9. A dispersion compensator comprising:

a first 1XM coupler;

a first MXN coupler coupled to the first 1XM coupler;

at least one NXN coupler(s) coupled in series to the first MXN coupler;

a second MXN coupler coupled to the at least one NXN coupler(s); and

a second 1XM coupler coupled to the second MXN coupler;

wherein the first 1XM coupler and the first MXN coupler, and the second MXN coupler and the second 1XM coupler, are respectively coupled using an array of M waveguides having an adjacent waveguide path-length difference of about ΔL; and

wherein the first and second MXN couplers are respectively coupled to the at least one NXN coupler(s) using an array of N waveguides having an adjacent waveguide path-length difference of about 2ΔL; and

wherein the at least one NXN coupler(s) are coupled using an array of N waveguides having an adjacent waveguide path-length difference of about 2 μL; and

wherein the coupling ratios of the first MXN coupler, the at least one NXN coupler(s), and the second MXN coupler are selected such that the dispersion compensator provides a desired amount of dispersion compensation.

10. The dispersion compensator of claim 9 , wherein the coupling ratios of the first and second MXN couplers are selected such that longer wavelengths of light propagated through the MXN couplers to the at least one NXN coupler(s) are substantially coupled to longer waveguides of an array of N waveguides to provide positive dispersion compensation.

11. The dispersion compensator of claim 9 , wherein the coupling ratios of the first and second MXN couplers are selected such that shorter wavelengths of light propagated through the MXN couplers are substantially coupled to longer waveguides of an array of N waveguides to provide negative dispersion compensation.

12. The dispersion compensator of claim 9 , wherein the coupling ratios of the at least one NXN couplers are selected such that longer wavelengths of light propagated through the at least one NXN coupler(s) are substantially coupled to longer waveguides of an array of N waveguides coupled to the at least one NXN coupler(s) to provide positive dispersion compensation.

13. The dispersion compensator of claim 9 , wherein the coupling ratios of the at least one NXN coupler(s) are selected such that shorter wavelengths of light propagated through the at least one NXN coupler(s) are substantially coupled to longer waveguides of an array of N waveguides coupled to the at least one NXN coupler(s) to provide negative dispersion compensation.

14. The dispersion compensator of claim 9 , wherein the first MXN coupler, the at least one NXN coupler(s), and the second MXN coupler are adjustable to thereby control the amount of dispersion provided by the dispersion compensator.

15. The dispersion compensator of claim 14 , wherein the first MXN coupler and the second MXN coupler are driven with a drive signal s+s o , and the at least one NXN coupler(s) are driven using a drive signal γs+s o , where s is the drive signal strength, so is the strength of the drive signal which provides zero dispersion compensation, and γ≧1.

16. The dispersion compensator of claim 9 , wherein the first MXN coupler, the at least one NXN coupler(s), and the second MXN coupler each include adjustable lens means for controlling the coupling ratios of the couplers.

17. The dispersion compensator of claim 16 , wherein the adjustable lens means each comprise a thermo-optic lens.

18. The dispersion compensator of claim 16 , wherein the adjustable lens means each comprise a plurality of phase shifters.

19. The dispersion compensator of claim 9 , further comprising a half-wave plate operatively coupled between the at least one NXN coupler(s) such that the dispersion compensator provides substantially polarization-independent dispersion compensation.

Assignments (7)
RELEASE OF SECURITY INTEREST Recorded Jun 3, 2021
From: TERRIER SSC, LLC
To: WSOU INVESTMENTS, LLC
Reel/Frame 056526/0093 →
SECURITY INTEREST Recorded Jun 1, 2021
From: WSOU INVESTMENTS, LLC
To: OT WSOU TERRIER HOLDINGS, LLC
Reel/Frame 056990/0081 →
RELEASE OF SECURITY INTEREST Recorded May 21, 2019
From: OCO OPPORTUNITIES MASTER FUND, L.P. (F/K/A OMEGA CREDIT OPPORTUNITIES MASTER FUND LP
To: WSOU INVESTMENTS, LLC
Reel/Frame 049246/0405 →
SECURITY INTEREST Recorded May 20, 2019
From: WSOU INVESTMENTS, LLC
To: BP FUNDING TRUST, SERIES SPL-VI
Reel/Frame 049235/0068 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 25, 2017
From: ALCATEL LUCENT
To: WSOU INVESTMENTS, LLC
Reel/Frame 044000/0053 →
SECURITY INTEREST Recorded Sep 21, 2017
From: WSOU INVESTMENTS, LLC
To: OMEGA CREDIT OPPORTUNITIES MASTER FUND, LP
Reel/Frame 043966/0574 →
RELEASE OF SECURITY INTEREST Recorded Oct 9, 2014
From: CREDIT SUISSE AG
To: ALCATEL-LUCENT USA INC.
Reel/Frame 033950/0001 →