IP Library Granted Patent US 9,419,405
Granted Patent B2
US 9,419,405 · App. 14/811,385 · Granted Aug 16, 2016

Unidirectional ring lasers

Inventors: Di Liang (Palo Alto, CA); David A. Fattal (Palo Alto, CA)
Assignee: Hewlett Packard Enterprise Development LP
H01S3/083H01S3/063H01S5/042H01S5/1028H01S5/1071H01S5/021H01S5/026H01S5/0656H01S5/323H01S5/4087
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Quick Facts
Patent No.
US 9,419,405
App. No.
14/811,385
Filed
Jul 28, 2015
Granted
Aug 16, 2016
Kind
B2
Art Unit
2828
USPC
372/64
Abstract

A laser includes an active ring, a passive waveguide, and a reflector. The active ring is to generate light. The passive waveguide is associated with the active ring to capture generated light. The reflector is associated with the passive waveguide to cause captured light from the waveguide to be coupled into the active ring to trigger domination of unidirectional lasing in the active ring to generate light.

Claims (26)

1. A laser, comprising:

an active ring to generate a light;

a passive waveguide associated with the active ring for capturing a captured light of the light that is generated; and

a reflector associated with the passive waveguide to cause the captured light from the waveguide to be coupled into the active ring to trigger a domination of unidirectional lasing of the light in the active ring,

wherein the reflector is tunable to adjust a reflection bandwidth of a lasing wavelength associated with the active ring.

2. The laser of claim 1 , wherein the passive waveguide includes a coupling point, at a distance from the reflector, associated with a phase condition based on the distance and a laser wavelength, to provide a constructive interference over an optical bandwidth.

3. The laser of claim 1 , wherein the active ring includes a gain medium responsive to an external energy pump to generate the light.

4. The laser of claim 1 , wherein the reflector includes a facet reflector having a reflection coating.

5. The laser of claim 1 , wherein the reflector includes a teardrop reflector.

6. The laser of claim 1 , wherein the reflector includes a passive ring reflector.

7. The laser of claim 1 , wherein the reflector includes a distributed bragg reflector (DBR).

8. A laser, comprising:

at least one active ring to generate a light in response to an external energy pump;

a passive waveguide associated with the at least one active ring for capturing a captured light of the light based on a coupling point; and

at least one reflector associated with the passive waveguide at a distance from the coupling point to cause the captured light from the waveguide to be reflected back into the at least one active ring to trigger a domination of unidirectional lasing in the at least one active ring to generate the light,

wherein the at least one reflector is tunable to adjust a reflection bandwidth of a lasing wavelength associated with the at least one active ring.

9. The laser of claim 8 , wherein the at least one active ring comprises a plurality of active rings associated with the passive waveguide, wherein each of the plurality of active rings is for generating a respective light having a different wavelength.

10. The laser of claim 9 , wherein the at least one reflector comprises a plurality of reflectors, wherein each one of the plurality of reflectors is associated with one of the plurality of active rings.

11. The laser of claim 10 , wherein each one of the plurality of reflectors causes a constructive interference at the different wavelength of a respective captured light.

12. A method, comprising:

generating a light at an active ring;

capturing a captured light of the light that is generated at a passive waveguide associated with the active ring;

triggering a domination of unidirectional lasing in the active ring to generate the light based on a reflector associated with the passive waveguide to couple the captured light from the waveguide into the active ring; and

tuning the reflector to adjust a reflection bandwidth associated with a lasing wavelength of the active ring.

13. The method of claim 12 , wherein the passive waveguide comprises a main waveguide and a side waveguide.

14. The method of claim 13 , wherein the side waveguide is separate from the main waveguide.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 9, 2015
From: HEWLETT-PACKARD DEVELOPMENT COMPANY, L.P.
To: HEWLETT PACKARD ENTERPRISE DEVELOPMENT LP
Reel/Frame 037079/0001 →
Continuity (2)
Continuation 14373385
Related Publication 20150333479A1 · Nov 19, 2015