IP Library Granted Patent US 11,431,149
Granted Patent B1
US 11,431,149 · App. 16/823,823 · Granted Aug 30, 2022

Single mode laser with large optical mode size

Inventors: Gordon Barbour Morrison (Summerland, CA); Milan L. Mashanovitch (Goleta, CA); Hannah Grant (Santa Barbara, CA)
Assignee: Freedom Photonics LLC
H01S5/0268G02B6/14H01S5/1237H01S5/3436H01S5/3438H01S5/34353H01S5/34373
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Quick Facts
Patent No.
US 11,431,149
App. No.
16/823,823
Filed
Mar 19, 2020
Granted
Aug 30, 2022
Kind
B1
Examiner
NIU, XINNING
Art Unit
2828
USPC
372/43.01
Abstract

A laser including a grating configured to reduce lasing threshold for a selected vertically confined mode as compared to other vertically confined modes.

Claims (34)

1. A laser comprising:

a waveguide configured to support a vertically confined fundamental optical mode and at least one vertically confined higher order optical mode;

an active region at a first position with respect to the waveguide; and

a grating at a second position with respect to the waveguide, the first position of the active region configured to provide more gain to the at least one higher order mode and the second position of the grating configured to provide more feedback to the fundamental optical mode.

2. The laser of claim 1 , wherein the grating overlaps with a peak of the fundamental optical mode.

3. The laser of claim 1 , wherein the grating overlaps with a null of the at least one higher order optical mode.

4. The laser of claim 1 , wherein an optical power of light outputted from the laser is between about 10 mW and about 50 W.

5. The laser of claim 1 , wherein a side mode suppression ratio of light outputted from the laser is between about 10 dB and about 150 dB.

6. The laser of claim 1 , wherein the waveguide comprises a first plurality of layers comprising a first material having a first refractive index and a second plurality of layers comprising a second material having a second refractive index.

7. The laser of claim 1 , wherein the active region is over the waveguide.

8. The laser of claim 1 , wherein the active region is within the waveguide.

9. The laser of claim 1 , wherein the grating is within the waveguide.

10. The laser of claim 1 , wherein the waveguide is between and vertically confined by a first region and a second region, the first region comprising a first material having a first refractive index, the second region comprising a second material having a second refractive index, the waveguide comprising a third material having a third refractive index, the first refractive index less than the third refractive index, and the second refractive index less than the third refractive index.

11. The laser of claim 10 , wherein the waveguide is laterally confined by at least one region comprising a fourth material having a fourth refractive index.

12. The laser of claim 11 , wherein the fourth refractive index is substantially equal to the first refractive index and/or the second refractive index.

13. The laser of claim 11 , wherein the fourth material is electrically blocking or insulating.

14. A method for designing a laser comprising a waveguide, an active region, and a grating, the method comprising:

providing a position of the active region and a position of the grating;

calculating at least a vertically confined first optical mode and at least one vertically confined second optical mode supported by the waveguide for the position of the active region and the position of the grating;

adjusting the positions of the active region and the grating such that an overlap of the first optical mode with the active region is smaller than the overlap of the second optical mode with the active region, an overlap of the first optical mode with the grating region is larger than the overlap of the second optical mode with the grating, and a first product of an overlap of the first optical mode with the grating and an overlap of the first optical mode with the active region is greater than a second product of an overlap of the at least one second optical mode with the grating and an overlap of the at least one second optical mode with the active region;

re-calculating at least the first optical mode and the at least one second optical mode and determining perturbations of at least the first optical mode and the at least one second optical mode resulting from the adjusted positions of the active region and the grating;

calculating a difference between the first product and the second product;

adjusting, if the difference is less than a threshold value, the positions of the active region and the grating such that the first product is larger than the second product.

15. The method of claim 14 , wherein the first optical mode is a vertically confined fundamental optical mode supported by the waveguide and the at least one second optical mode is a vertically confined second order optical mode and/or a vertically confined third order optical mode supported by the waveguide.

16. The method of claim 14 , wherein the position of the active region and the position of the grating are within the waveguide.

17. The method of claim 14 , wherein the threshold value is 1 dB, 3 dB, 10 dB, 15 dB, 20 dB, or any value in a range/sub-range defined by any of these threshold values.

18. A laser comprising:

a waveguide configured to support a vertically confined fundamental optical mode and at least one vertically confined higher order optical mode;

an active region at a first position with respect to the waveguide;

a grating at a second position with respect to the waveguide, the first position of the active region and the second position of the grating configured to reduce a first lasing threshold for the fundamental optical mode and to increase a second lasing threshold for the at least one higher order optical mode; and

wherein the grating provides more overlap with the fundamental optical mode compared to higher order mode.

19. The laser of claim 18 , wherein the active region overlaps with a peak of the fundamental optical mode.

20. The laser of claim 18 , wherein the active region overlaps with a null of the at least one higher order optical mode.

21. The laser of claim 18 , wherein the grating overlaps with a null of the at least one higher order optical mode.

Assignments (6)
PARTIAL RELEASE OF SECURITY INTEREST IN PATENTS AND TRADEMARKS Recorded Feb 2, 2026
From: GLAS TRUST COMPANY LLC
To: LUMINAR SEMICONDUCTOR, INC.; FREEDOM PHOTONICS, LLC; OPTOGRATION, INC.; EMFOUR ACQUISITION CO., LLC; EM4, LLC
Reel/Frame 074615/0608 →
PARTIAL RELEASE OF SECURITY INTEREST IN PATENTS AND TRADEMARKS Recorded Feb 2, 2026
From: GLAS TRUST COMPANY LLC
To: LUMINAR SEMICONDUCTOR, INC.; FREEDOM PHOTONICS, LLC; OPTOGRATION, INC.; EMFOUR ACQUISITION CO., LLC; EM4, LLC
Reel/Frame 074667/0219 →
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 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 20, 2022
From: MORRISON, GORDON BARBOUR; MASHANOVITCH, MILAN L.; GRANT, HANNAH
To: FREEDOM PHOTONICS LLC
Reel/Frame 058715/0759 →
Continuity (1)
Provisional Application 62822677 · Mar 22, 2019