IP Library Granted Patent US 11,722,236
Granted Patent B1
US 11,722,236 · App. 17/658,053 · Granted Aug 8, 2023

Polarization-maintaining wavelength selective switch for free-space optical communication

Inventors: Ian G. Clarke (Sydney, AU); Massimo Di Blasio (Princeton, NJ)
Assignee: II-VI DELAWARE, INC.
H04J14/0212H04B10/11H04B10/2507
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Quick Facts
Patent No.
US 11,722,236
App. No.
17/658,053
Granted
Aug 8, 2023
Kind
B1
Abstract

A free-space optical communication system has a conversion assembly, a fiber array, and a wavelength selective switch (WSS) assembly. The conversion assembly converts circular polarization states of incoming optical signals to linear polarization states and converts linear polarization states to circular polarization states for outgoing optical signals. The fiber array has polarization-maintaining (PM) optical fibers arranged in optical communication between the conversion assembly and the WSS assembly to preserve the linear polarization states of the optical signals. The WSS assembly has free-space optics, such as dispersion element and beam-steering element, with optical axes arranged relative to the PM optical fibers. The WSS assembly selectively switches WDM channels of the optical signals relative to the PM optical fibers. Fast and slow axes of the PM optical fibers are aligned to the optical axes of the free-space optics.

Claims (40)

1. A module for free-space optical communication using optical signals, the optical signals having wavelength division multiplexed (WDM) channels, each of the WDM channels having polarization states, the module comprising:

a polarization conversion assembly being configured to convert circular polarization states of incoming ones of the optical signals from the free-space optical communication to linear polarization states and being configured to convert linear polarization states to circular polarization states for outgoing ones of the optical signals of the free-space optical communication;

a fiber array arranged in optical communication with the polarization conversion assembly and having polarization-maintaining optical fibers for the optical signals, each of the polarization-maintaining optical fibers being configured to preserve the linear polarization states; and

a wavelength selective switch arranged in optical communication with the fiber array and having free-space optics with optical axes, the wavelength selective switch being configured to selectively switch the WDM channels of the optical signals relative to the polarization-maintaining optical fibers, wherein fast and slow axes of the polarization-maintaining optical fibers of the fiber array are aligned to the optical axes of the free-space optics.

2. The module of claim 1 , wherein the polarization conversion assembly comprises one or more of: a quarter-wave plate having an optical axis set at 45 degrees relative to principal axes of an associated one of the polarization-maintaining optical fibers; a Fresnel Rhomb having an optical axis set at 45 degrees relative to the principal axes of the associated polarization-maintaining optical fiber; and a short length of birefringent optical fiber spliced directly on an end of the associated polarization-maintaining optical fiber and having an optical axis set at 45 degrees to the principal axes thereof.

3. The module of claim 1 , wherein the free-space optics of the wavelength selective switch comprise:

a dispersion element arranged in optical communication with the fiber array, the dispersion element being configured to disperse the optical signals into the WDM channels across a dispersion direction; and

a beam-steering element arranged in optical communication with the WDM channels from the dispersion element and being configured to selectively steer the WDM channels back to the dispersion element.

4. The module of claim 3 , wherein the free-space optics of the wavelength selective switch comprises a lens assembly arranged in optical communication between the fiber array and the dispersion element and being configured to image the optical signals therebetween.

5. The module of claim 4 , wherein the lens assembly comprises polarization diversity optics.

6. The module of claim 3 , wherein the free-space optics of the wavelength selective switch comprises a folding mirror arranged in optical communication between the dispersion element and the beam-steering element.

7. The module of claim 3 , wherein the dispersion element comprises a diffraction grating, a prism, or an arrayed waveguide grating.

8. The module of claim 3 , wherein the beam-steering element comprises a liquid crystal (LC) switch engine, a liquid-crystal-on-silicon (LCoS) switch engine, a plurality of microelectromechanical systems (MEMS) mirrors, a Digital Micro-mirror Device (DMD), and an optical phase array.

9. The module of claim 1 , further comprising a plurality of couplers being configured to couple the incoming ones of the optical signals from the free-space optical communication and being configured to couple the outgoing ones of the optical signals to the free-space optical communication.

10. The module of claim 9 , wherein the couplers comprise telescopes on gimbal mounts.

11. The module of claim 1 , further comprising optical amplifiers arranged in optical communication with the fiber array and being configured to preserve the linear polarization of the optical signals.

12. The module of claim 1 , further comprising detectors arranged in optical communication with the fiber array and being configured to measure responses associated with the optical signals.

13. A free-space optical communication system having a plurality of the modules according to claim 1 .

14. A wavelength selective switch for free-space optical communication using optical signals, the optical signals having wavelength division multiplexed (WDM) channels, each of the WDM channels having polarization states, the wavelength selective switch comprising:

a polarization conversion assembly being configured to convert circular polarization states of incoming ones of the optical signals from the free-space optical communication to linear polarization states and being configured to convert linear polarization states to circular polarization states for outgoing ones of the optical signals of the free-space optical communication;

a fiber array arranged in optical communication with the polarization conversion assembly and having polarization-maintaining optical fibers, each of the polarization-maintaining optical fibers being configured to preserve the linear polarization states; and

free-space optics having optical axes and including:

a dispersion element arranged in optical communication with the fiber array, the dispersion element being configured to disperse the optical signals into the WDM channels across a dispersion direction; and

a beam-steering element arranged in optical communication with the WDM channels from the dispersion element and being configured to selectively steer the WDM channels back to the dispersion element,

wherein fast and slow axes of the polarization-maintaining optical fibers of the fiber array are aligned to the optical axes of the free-space optics.

15. A method used in free-space optical communication that uses optical signals, the optical signals having wavelength division multiplexed (WDM) channels, each of the WDM channels having polarization states, the method comprising:

converting circular polarization states of incoming ones of the optical signals from the free-space optical communication to linear polarization states;

converting linear polarization states to circular polarization states for outgoing ones of the optical signals of the free-space optical communication;

preserving the linear polarization states of the optical signals using a fiber array having polarization-maintaining optical fibers by aligning fast and slow axes of the optical fibers of the fiber array to optical axes of free-space optics of a wavelength selective switch; and

selectively switching the WDM channels of the optical signals relative to the polarization-maintaining optical fibers using the free-space optics of the wavelength selective switch.

16. The method of claim 15 , wherein converting the circular polarization states and converting the linear polarization states comprises optically coupling the incoming and outgoing optical signals through one or more of: a quarter-wave plate having an optical axis set at 45 degrees relative to principal axes of an associated one of the polarization-maintaining optical fibers; a Fresnel Rhomb having an optical axis set at 45 degrees relative to the principal axes of the associated polarization-maintaining optical fiber; and

a short length of birefringent optical fiber spliced directly on an end of the associated polarization-maintaining optical fiber and having an optical axis set at 45 degrees to the principal axes thereof.

17. The method of claim 15 , wherein selectively switching the WDM channels of the optical signals relative to the polarization-maintaining optical fibers using the free-space optics of the wavelength selective switch comprises:

dispersing the optical signals into the WDM channels across a dispersion direction using a dispersion element of the free-space optics arranged in optical communication with the fiber array; and

selectively beam-steering the WDM channels from the dispersion element back to the dispersion element using a beam-steering element of the free-space optics.

18. The method of claim 17 , comprising imaging the optical signals with a lens assembly arranged in optical communication between the fiber array and the dispersion element.

19. The method of claim 17 , comprising folding the WDM channels with a folding mirror arranged in optical communication between the dispersion element and the beam-steering element.

20. The method of claim 15 , further comprising coupling the incoming ones of the optical signals from the free-space optical communication with a plurality of couplers in optical communication with the optical fibers of the fiber array; and coupling the outgoing ones of the optical signals from the optical fibers to the free-space optical communication using the couplers.

21. The method of claim 15 , further comprising amplifying the optical signals with amplifiers in optical communication with the fiber array and preserving the linear polarization of the optical signals.

22. The method of claim 15 , further comprising measuring the optical signals with detectors arranged in optical communication with the fiber array.

Assignments (3)
SECURITY INTEREST Recorded Jul 1, 2022
From: II-VI INCORPORATED; II-VI DELAWARE, INC.; M CUBED TECHNOLOGIES, INC.; II-VI PHOTONICS (US), INC.; PHOTOP TECHNOLOGIES, INC.; COHERENT, INC.
To: JPMORGAN CHASE BANK, N.A., AS COLLATERAL AGENT
Reel/Frame 060562/0254 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 29, 2022
From: CLARKE, IAN G; DI BLASIO, MASSIMO
To: II-VI DELAWARE, INC.
Reel/Frame 060360/0275 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 5, 2022
From: CLARKE, IAN G; DI BLASIO, MASSIMO
To: II-VI DELAWARE, INC.
Reel/Frame 059507/0410 →
Cited By (1)
US 12,413,306