IP Library Granted Patent US 8,731,403
Granted Patent B2
US 8,731,403 · App. 13/368,254 · Granted May 20, 2014

Multicast optical switch

Inventors: Massimo Martinelli (Santa Clara, CA); Manish Sharma (Morgan Hill, CA); Ruipeng Sun (Pleasanton, CA); Mark H. Garrett (Morgan Hill, CA); Aravanan Gurusami (Morgan Hill, CA)
Assignee: II-VI Incorporated
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 8,731,403
App. No.
13/368,254
Granted
May 20, 2014
Kind
B2
Abstract

A multicast optical switch includes a free-space optical assembly of discrete splitters, cylindrical optics, and a linear array of reflective switching devices, such as microelectromechanical systems (MEMS) mirrors, to provide low-loss, high-performance multicast switching in a compact configuration. The assembly of optical splitters may include multiple planar lightwave circuit splitters or a multi-reflection beam splitter that includes a linear array of partially reflecting mirrors, each of a different reflectivity.

Claims (45)

1. An M×N multicast switch, comprising:

M input ports, where M is greater than 1;

N output ports, where N is greater than 1;

M splitters, each configured to produce N split optical signals from an input optical signal received through one of the M input ports, and each of the splitters comprising a linear array of partially-transmissive mirrors and each partially-transmissive mirror in the array has a different reflectivity; and

a 1×N array of mirrors each controllable to direct one of N split optical signals to one of the N output ports.

2. The multicast switch of claim 1 , wherein the M splitters are configured as a single assembly.

3. The multicast switch of claim 1 , further comprising a planar lightwave circuit configured to receive the N optical signals directed by the mirrors and guide the N optical signals to the N output ports using N waveguides.

4. The multicast switch of claim 3 , wherein each of the N waveguides comprises a variable optical attenuator.

5. The multicast switch of claim 1 , wherein each mirror in the 1×N array of mirrors is rotatable about a first axis to direct an optical signal received thereat to one of the N output ports.

6. The multicast switch of claim 5 , wherein each mirror in the 1×N array of mirrors is further rotatable about a second axis to enable hitless switching.

7. The multicast switch of claim 1 , wherein the N split optical signals produced by one of the M splitters are of approximately equal intensity.

8. The multicast switch of claim 1 , further comprising cylindrical optics disposed between the M splitters and the 1×N array of mirrors and configured to focus light from the M splitters on each of the mirrors in a first plane and to produce an image with light from the M splitters on each of the mirrors in a second plane, the second plane being orthogonal to the first plane.

9. An M×N multicast switch, comprising:

M input ports, where M is greater than 1;

N output ports, where N is greater than 1;

M splitters, each configured to produce N split optical signals from an input optical signal received through one of the M input ports, and each of the splitters comprises a linear array of mirrors and each mirror in the array has a different reflectivity; and

M mirrors, each mirror associated with one of the input ports and controllable to direct an input optical signal from an associated input port to anyone of the N output ports,

wherein, while one of the mirrors is controlled to switch the input optical signal directed at a first output port to be directed at a second output port different from the first output port, the input optical signal is optically decoupled from all of the output ports during the switching between the first and second output port.

10. The multicast switch of claim 9 , wherein, after said one of the mirrors has been controlled to switch the input optical signal directed at the first output port to be directed at the second output port, the input optical signal is optically coupled to the second output port.

11. The multicast switch of claim 10 , wherein the controlled mirror is rotatable about a first axis to switch the input optical signal directed at the first output port to be directed at the second output port and is rotatable about a second axis to optically decouple the input optical signal from all of the output ports.

12. The multicast switch of claim 9 , further comprising cylindrical optics disposed between the N splitters and the M mirrors and configured to focus light from the N splitters on each of the M mirrors in a first plane and to produce an image with light from the N splitters on each of the M mirrors in a second plane, the second plane being orthogonal to the first plane.

13. The multicast switch of claim 9 , further comprising:

a liquid crystal pixel positioned in an optical path of the input optical signal for rotating a polarization of the input optical signal to optically decouple the input optical signal from all of the output ports.

14. The multicast switch of claim 13 , further comprising:

a first beam steering assembly positioned between the input ports and the liquid crystal pixel for converting the input optical signal into a pair of parallel beams having the same polarization and for directing the parallel beams from the mirrors into one of the N output ports.

15. An M×N multicast switch, comprising:

M input ports, where M is greater than 1;

N output ports, where N is greater than 1;

a liquid-crystal on silicon (LCOS) panel having 1×N beam steering elements, each beam steering element comprising multiple pixels whose phase can be controlled individually to direct an input optical signal from anyone of the M input ports to one of the N output ports associated with the beam steering element;

M splitters, each configured to produce N split optical signals from an input optical signal received through one of the M input ports; and

cylindrical optics disposed between the M splitters and the LCOS panel, the optics configured to focus light from the M splitters on each of the beam steering elements in a first plane and to produce an image with light from the M splitters on each of the beam steering elements in a second plane, the second plane being orthogonal to the first plane.

16. The multicast switch of claim 15 , further comprising:

a birefringent beam steering element configured to direct light having a first polarization state from each beam steering element of the LCOS panel into the output port associated with the beam steering element of the LCOS panel; and

an array of N liquid crystal elements disposed between the LCOS panel and the birefringent beam steering element, each liquid crystal element controllable to rotate the polarization of an input optical signal directed from one of the M input ports to one of the N output ports.

17. An M×N multicast switch, comprising:

M input ports, where M is greater than 1;

N output ports, where N is greater than 1; and

N mirrors, each mirror controllable to direct an input optical signal from any one of the M input ports to one of the N output ports associated with the mirror,

wherein, while one of the mirrors is controlled to switch the input optical signal from a first input optical signal, which is received through a first of the M input ports, to a second input optical signal, which is received through a second of the M input ports, all input optical signals are first optically decoupled from an output port associated with the controlled mirror, and then the desired second input optical signal is coupled to the output port associated with the controlled mirror.

18. The multicast switch of claim 17 , wherein the controlled mirror is rotatable about a first axis to switch the input optical signal from the first input optical signal to the second input optical signal and is rotatable about a second axis to optically decouple the first input optical signal from the output port associated with the controlled mirror.

19. The multicast switch of claim 17 , further comprising M splitters, each configured to produce N split optical signals from an input optical signal received through one of the M input ports.

20. The multicast switch of claim 19 , further comprising cylindrical optics disposed between the M splitters and the N mirrors and configured to focus light from the M splitters on each of the N mirrors in a first plane and to produce an image with light from the M splitters on each of the N mirrors in a second plane, the second plane being orthogonal to the first plane.

21. The multicast switch of claim 19 , wherein each of the splitters comprises a planar lightwave circuit.

22. The multicast switch of claim 19 , wherein each of the splitters comprises a linear array of mirrors and each mirror in the array has a different reflectivity.

23. The multicast switch of claim 17 , further comprising a liquid crystal pixel positioned in an optical path of the first input optical signal for rotating a polarization of the first input optical signal to optically decouple the first input optical signal from the output port associated with the controlled mirror.

Assignments (6)
PATENT RELEASE AND REASSIGNMENT Recorded Jul 5, 2022
From: BANK OF AMERICA, N.A., AS ADMINISTRATIVE AGENT
To: II-VI INCORPORATED; MARLOW INDUSTRIES, INC.; EPIWORKS, INC.; LIGHTSMYTH TECHNOLOGIES, INC.; KAILIGHT PHOTONICS, INC.; COADNA PHOTONICS, INC.; OPTIUM CORPORATION; FINISAR CORPORATION; II-VI OPTICAL SYSTEMS, INC.; M CUBED TECHNOLOGIES, INC.; II-VI PHOTONICS (US), INC.; II-VI DELAWARE, INC.; II-VI OPTOELECTRONIC DEVICES, INC.; PHOTOP TECHNOLOGIES, INC.
Reel/Frame 060574/0001 →
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 Dec 6, 2019
From: II-VI INCORPORATED
To: II-VI DELAWARE, INC.
Reel/Frame 051210/0411 →
NOTICE OF GRANT OF SECURITY INTEREST IN PATENTS Recorded Sep 25, 2019
From: II-VI INCORPORATED; MARLOW INDUSTRIES, INC.; EPIWORKS, INC.; LIGHTSMYTH TECHNOLOGIES, INC.; KAILIGHT PHOTONICS, INC.; COADNA PHOTONICS, INC.; OPTIUM CORPORATION; FINISAR CORPORATION; II-VI OPTICAL SYSTEMS, INC.; M CUBED TECHNOLOGIES, INC.; II-VI PHOTONICS (US), INC.; II-VI DELAWARE, INC.; II-VI OPTOELECTRONIC DEVICES, INC.; PHOTOP TECHNOLOGIES, INC.
To: BANK OF AMERICA, N.A., AS ADMINISTRATIVE AGENT
Reel/Frame 050484/0204 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 28, 2014
From: OCLARO TECHNOLOGY LIMITED; OCLARO, INC.; OCLARO (NORTH AMERICA), INC.; OCLARO TECHNOLOGY, INC.
To: II-VI INCORPORATED
Reel/Frame 032554/0818 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 7, 2012
From: MARTINELLI, MASSIMO; SHARMA, MANISH; SUN, RUIPENG; GARRETT, MARK H.; GURUSAMI, ARAVANAN
To: OCLARO TECHNOLOGY LIMITED
Reel/Frame 027667/0852 →
Continuity (1)
Related Publication 20130202297A1 · Aug 8, 2013