IP Library Granted Patent US 12,619,035
Granted Patent B2
US 12,619,035 · App. 17/901,741 · Granted May 5, 2026

Multiwavelength optical sources

Inventors: Gordon Barbour Morrison (Summerland, CA); Leif Albin Johansson (Santa Barbara, CA)
Assignee: Freedom Photonics LLC
G02B6/4202G02B6/032G02B6/43H01S5/02251H01S5/4025G02B2006/0325
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Quick Facts
Patent No.
US 12,619,035
App. No.
17/901,741
Filed
Sep 1, 2022
Granted
May 5, 2026
Kind
B2
Art Unit
2874
USPC
385/14
Abstract

Configurations are disclosed for multi-wavelength optical devices and systems. In particular, multi-wavelength optical devices that include separate chips optically connected via phonic wire bonds. The disclosed configurations can utilize photonic wire bond interconnects and photonic wire bond interconnection techniques, which may facilitate low-cost implementation of wavelength division multiplexed optical systems.

Claims (22)

1 . An optical device comprising:

a multi-wavelength optical source comprising:

a plurality of optically active waveguides configured to provide optical gain having a plurality of output ports configured to output laser light amplified by the plurality of optically active waveguides;

a photonic integrated circuit (PIC) comprising a plurality of input ports, and a plurality of narrow band optical reflectors configured to reflect at least a portion of light received from the plurality of input ports, and at least one PIC output port configured to output multi-wavelength light comprising laser light having at least two different wavelengths, wherein the PIC further comprises an optical multiplexer optically coupled to the plurality of narrowband optical reflectors and the at least one PIC output port, the optical multiplexer configured to combine light from the plurality of laser sources to form the multi-wavelength light; and

a plurality of polymer waveguides connected to the plurality of input ports of the PIC and the plurality of output ports of the plurality of optically active waveguides, the plurality of the polymer waveguides configured to optically connect the plurality of output ports of the plurality of optically active waveguides to the plurality of input ports to form a plurality of laser sources comprising the plurality of optically active waveguides and respective narrowband optical reflectors, wherein the plurality of optically active waveguides and the PIC are fabricated on at least two separate substrates, wherein the plurality of polymer waveguides comprise polymer cladded polymer waveguides, and wherein the at least one PIC output port comprises a first PIC output port configured to provide a first multi-wavelength output and a second PIC output port configured to provide a second multi-wavelength output.

2 . The optical device of claim 1 , wherein at least one of the polymer waveguides has a length and a cross-section orthogonal to the length that is round, circular, elliptically-shaped, or oval-shaped.

3 . The optical device of claim 1 , wherein a polymer waveguide of the plurality of polymer waveguides is embedded in a polymer layer having an optical refractive index less than that of the polymer waveguide.

4 . The optical device of claim 1 , wherein the laser light generated by the at least one PIC output port comprises a narrowband light output centered around a single center wavelength.

5 . The optical device of claim 1 , further comprising a spot-size converter configured to convert a spot-size of light output by at least one optically active waveguide.

6 . The optical device of claim 1 , wherein an optically active waveguide of the plurality optically active waveguides comprises a semiconductor optical amplifier configured to amplify the laser light.

7 . The optical device of claim 1 , wherein the plurality of optically active waveguides comprise a plurality of back reflectors and a plurality of laser cavities are formed between the plurality of back reflectors and a plurality of the narrowband optical reflectors via the plurality of polymer waveguides.

8 . The optical device of claim 7 , wherein the plurality of back reflectors comprise a highly reflective coating or a high reflectivity mirror at a back end of at least one of the plurality of optically active waveguides.

9 . The optical device of claim 1 , wherein the PIC further comprises an optical multiplexer configured to receive light from the plurality of narrowband optical reflectors and provide the multi-wavelength light to the at least one PIC output port.

10 . The optical device of claim 1 , wherein the PIC further comprises an optical multiplexer configured to combine light received from the plurality of the input ports and provide the multi-wavelength light to the at least one PIC output port.

11 . The optical device of claim 10 , wherein the optical multiplexer comprises an arrayed waveguide grating (AWG).

12 . The optical device of claim 1 , wherein at least one of the narrowband optical reflectors comprises a sampled grating Bragg reflector, a Bragg reflector, or a ring resonator.

13 . The optical device of claim 1 , wherein the plurality of optically active waveguides are monolithically fabricated on a first chip of at least two separate chips, the first chip comprising IIIV semiconductor material.

14 . The optical device of claim 13 , wherein the PIC comprises a planar light wave circuit (PLC) fabricated on a second chip of the at least two separate chips, the second chip comprising silicon.

15 . The optical device of claim 1 , wherein the plurality of optically active waveguides are monolithically fabricated on a gain bar.

16 . The optical device of claim 1 , wherein the plurality of optically active waveguides comprises a plurality of gain chips mounted on a carrier chip.

17 . The optical device of claim 1 , wherein at least one narrowband reflector of the plurality of narrowband optical reflectors comprises a center wavelength different from the center wavelength of other narrowband reflectors.

18 . The optical device of claim 1 , wherein a diameter of at least one of the polymer waveguides of the plurality of polymer waveguides does not exceed 20 microns along a length of the at least one of the polymer waveguides, or wherein a longitudinal distance between one of said output ports of a laser array and one of said input ports optically connected thereto via the polymer waveguides is less than 500 microns, or wherein a spacing between adjacent output ports of the plurality of output ports or a spacing between adjacent input ports of the plurality of input ports is less than 20 microns.

Assignments (4)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 18, 2025
From: MORRISON, GORDON BARBOUR; JOHANSSON, LEIF ALBIN
To: FREEDOM PHOTONICS, LLC
Reel/Frame 072941/0204 →
CORRECTIVE ASSIGNMENT TO CORRECT THE THE NAME OF THE FIRST CONVEYING PARTY PREVIOUSLY RECORDED AT REEL: 69312 FRAME: 713. ASSIGNOR(S) HEREBY CONFIRMS THE ASSIGNMENT. Recorded Nov 27, 2024
From: LUMINAR TECHNOLOGIES, INC; LUMINAR , LLC; FREEDOM PHOTONICS LLC
To: GLAS TRUST COMPANY LLC
Reel/Frame 069990/0772 →
SECURITY INTEREST Recorded Nov 6, 2024
From: LUMINAR TECHNOLOGIES, INC; LUMINAR , LLC; FREEDOM PHOTONICS LLC
To: GLAS TRUST COMPANY LLC
Reel/Frame 069312/0669 →
SECURITY INTEREST Recorded Nov 6, 2024
From: LIMINAR TECHNOLOGIES, INC; LUMINAR, LLC; FREEDOM PHOTONICS LLC
To: GLAS TRUST COMPANY LLC
Reel/Frame 069312/0713 →
Continuity (2)
Provisional Application 63240851 · Sep 3, 2021
Related Publication 20230072926A1 · Mar 9, 2023
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