IP Library Patent Application 15240047
Patent Application
App. No. 15/240,047

DUAL POLARIZATION ARRAYED WAVEGUIDE GRATING

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Quick Facts
Patent No.
US None
App. No.
15/240,047
Abstract

A 1×N demultiplexer may include an input slab to distribute an input beam, including one or more wavelengths of light, among waveguides of a waveguide array. The wavelengths of light may comprise TE polarized light and TM polarized light. The 1×N demultiplexer may include the waveguide array to propagate a plurality of beams via the waveguides. The 1×N demultiplexer may include an output slab to cause N TE polarized beams and N TM polarized beams to be formed based on the plurality of beams. The 1×N demultiplexer may include a set of N TE output ports and a set of N TM output ports coupled to the output slab. A TE output port may receive a TE polarized beam of the N TE polarized beams. A TM output port may receive a TM polarized beam of the N TM polarized beams.

Claims (69)

1 . A 1×N demultiplexer, comprising:

an input slab to distribute an input beam, including one or more wavelengths of light, among a plurality of waveguides of a waveguide array,

a wavelength of light, of the one or more wavelengths of light, comprising transverse-electric (TE) polarized light and transverse-magnetic (TM) polarized light;

the waveguide array to propagate, to an output slab, a plurality of beams via the plurality of waveguides,

the plurality of beams to be formed by the distribution of the input beam within the input slab to the plurality of waveguides;

the output slab to cause a set of N TE polarized beams and a set of N TM polarized beams to be formed based on interference among the plurality of beams within the output slab,

a TE polarized beam, of the set of N TE polarized beams, including the TE polarized light of the wavelength of light, and

a TM polarized beam, of the set of N TM polarized beams, including the TM polarized light of the wavelength of light; and

a set of N TE output ports and a set of N TM output ports coupled to the output slab,

a TE output port, of the set of N TE output ports, to receive the TE polarized beam of the set of N TE polarized beams, and

a TM output port, of the set of N TM output ports, to receive the TM polarized beam of the set of N TM polarized beams.

2 . The 1×N demultiplexer of claim 1 , where the input slab, the waveguide array, the output slab, the set of N TE output ports, and the set of N TM output ports are arranged on a single chip, of a plurality of chips, on a wafer.

3 . The 1×N demultiplexer of claim 1 , where the input slab, the waveguide array, the output slab, the set of N TE output ports, and the set of N TM output ports are formed of silicon.

4 . The 1×N demultiplexer of claim 1 , where, at an output surface of the output slab, a first output port, of the set of N TE output ports, is positioned between a second output port, of the set of N TM output ports, and a third output port of the set of N TM output ports,

the first output port being associated with outputting a particular TE polarized beam of the set of N TE polarized beams,

the second output port being associated with outputting a first TM polarized beam of the set of N TM polarized beams, and

the third output port being associated with outputting a second TM polarized beam of the set of N TM polarized beams.

5 . The 1×N demultiplexer of claim 1 , where a first output pitch, associated with the set of N TE polarized beams, is different from a second output pitch associated with the set of N TM polarized beams.

6 . The 1×N demultiplexer of claim 1 , where an output pitch for the set of N TE output ports is in a range from 0.5 microns to 10 microns and an output pitch for the set of N TM output ports is in a range from 0.5 microns to 10 microns.

7 . The 1×N demultiplexer of claim 1 , where a first free spectral range, associated with the set of N TE polarized beams, is different from a second free spectral range associated with the set of N TM polarized beams.

8 . The 1×N demultiplexer of claim 1 , where a distance between a first output port, of the set of N TE output ports, and a second output port, of the set of N TM output ports, is in a range from 2 microns to 100 microns,

the first output port corresponding to a particular TE polarized beam of the set of N TE polarized beams,

the second output port corresponding to a particular TM polarized beam of the set of N TM polarized beams, and

the particular TE polarized beam and the particular TM polarized beam including a same wavelength of light of the one or more wavelengths of light.

9 . The 1×N demultiplexer of claim 1 , where a difference in angular dispersion between the set of N TE polarized beams and the set of N TM polarized beams in the output slab provides a gap between the set of N TE output ports and the set of N TM output ports.

10 . The 1×N demultiplexer of claim 1 , further comprising:

a photodetector to combine a particular TE polarized beam, of the set of N TE polarized beams, and a particular TM polarized beam, of the set of N TM polarized beams, to form a combined beam,

the particular TE polarized beam and the particular TM polarized beam including a same wavelength of light of the one or more wavelengths of light.

11 . The 1×N demultiplexer of claim 1 , where the waveguide array is to:

emit the plurality of beams into the output slab to create interference patterns at the set of N TE output ports and the set of N TM output ports,

the set of N TE output ports being coupled to the output slab at locations where TE maxima of the interference patterns are located, and

the set of N TM output ports being coupled to the output slab at locations where TM maxima of the interference patterns are located.

12 . An optical device, comprising:

an input slab to distribute an input beam, including one or more wavelengths of light, among a plurality of waveguides of a waveguide array,

a wavelength of light, of the one or more wavelengths of light, comprising transverse-electric (TE) polarized light and transverse-magnetic (TM) polarized light;

the waveguide array to propagate, to an output slab, a plurality of beams via the plurality of waveguides,

the plurality of beams to be formed based on the distribution of the input beam among the plurality of waveguides by the input slab;

the output slab to form a set of TE polarized beams and a set of TM polarized beams based on interference among the plurality of beams within the output slab,

a TE polarized beam, of the set of TE polarized beams, including the TE polarized light of the wavelength of light, and

a TM polarized beam, of the set of TM polarized beams, including the TM polarized light of the wavelength of light; and

a set of output ports, coupled to the output slab, to output the set of TE polarized beams and the set of TM polarized beams,

a first subset of output ports, of the set of output ports, to output the set of TE polarized beams, and a second subset of output ports, of the set of output ports, to output the set of TM polarized beams,

the first subset of output ports being different from the second subset of output ports.

13 . The optical device of claim 12 , where, at an output surface of the output slab, the first subset of output ports are spatially separated from the second subset of output ports.

14 . The optical device of claim 12 , where a first output pitch, associated with the set of TE polarized beams, is different from a second output pitch associated with the set of TM polarized beams.

15 . The optical device of claim 12 , where a focal length of the output slab is in a range from 20 microns to 1000 microns.

16 . The optical device of claim 12 , where a difference in angular dispersion between the set of TE polarized beams and the set of TM polarized beams in the output slab provides a gap between the first subset of output ports and the second subset of output ports.

17 . The optical device of claim 12 , where the waveguide array is to:

emit the plurality of beams into the output slab to create interference patterns at the set of output ports,

the first subset of output ports being coupled to the output slab at locations where TE maxima of the interference patterns are located, and

the second subset of output ports being coupled to the output slab at locations where TM maxima of the interference patterns are located.

18 . A method, comprising:

distributing, by an input slab of an optical device, an input beam among waveguides of a waveguide array of the optical device,

the input beam including multiple wavelengths of light,

a wavelength of light, of the multiple wavelengths of light, comprising transverse-electric (TE) polarized light and transverse-magnetic (TM) polarized light;

propagating, by the waveguide array and to an output slab of the optical device, a plurality of beams via the waveguides,

the plurality of beams being formed by the distributing of the input beam among the waveguides;

forming, by the output slab and based on the plurality of beams, a set of TE polarized beams and a set of TM polarized beams,

a TE polarized beam, of the set of TE polarized beams, including the TE polarized light of the wavelength of light, and

a TM polarized beam, of the set of TM polarized beams, including the TM polarized light of the wavelength of light; and

outputting, by a plurality of outputs of the optical device, the set of TE polarized beams and the set of TM polarized beams,

a first set of outputs, of the plurality of outputs, outputting the set of TE polarized beams, and

a second set of outputs, of the plurality of outputs, outputting the set of TM polarized beams,

the first set of outputs being different from the second set of outputs.

19 . The method of claim 18 , where forming the set of TE polarized beams and the set of TM polarized beams comprises:

emitting the plurality of beams into a first end of the output slab to create interference patterns at the plurality of outputs,

the plurality of outputs being arranged at an opposite end of the output slab from the first end, and

the plurality of outputs being arranged at positions where TE maxima and TM maxima of the interference patterns are located.

20 . The method of claim 18 , where the input slab, the waveguide array, the output slab, and the plurality of outputs are formed of a birefringent material.

Assignments (3)
RELEASE OF SECURITY INTEREST Recorded Dec 13, 2019
From: DEUTSCHE AG NEW YORK BRANCH
To: LUMENTUM OPERATIONS LLC; OCLARO FIBER OPTICS, INC.; OCLARO, INC.
Reel/Frame 051287/0556 →
PATENT SECURITY AGREEMENT Recorded Dec 11, 2018
From: LUMENTUM OPERATIONS LLC; OCLARO FIBER OPTICS, INC.; OCLARO, INC.
To: DEUTSCHE BANK AG NEW YORK BRANCH, AS COLLATERAL AGENT
Reel/Frame 047788/0511 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 18, 2016
From: FONDEUR, BARTHELEMY; PATHAK, SHIBNATH
To: LUMENTUM OPERATIONS LLC
Reel/Frame 039473/0602 →