IP Library Granted Patent US 10,551,626
Granted Patent B2
US 10,551,626 · App. 15/272,686 · Granted Feb 4, 2020

Method and system for multispectral beam combiner

Inventor: John R. Marciante (Webster, NY)
Assignee: RAM Photonics, LLC
G02B27/1006G02B17/086G02B27/30G02B27/4233H01S3/2391
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Quick Facts
Patent No.
US 10,551,626
App. No.
15/272,686
Filed
Sep 22, 2016
Granted
Feb 4, 2020
Kind
B2
Examiner
NIU, XINNING
Art Unit
2828
USPC
372/102
Abstract

A multispectral beam combiner includes a prism body having an output surface, a fiber entry block attached to the prism body, and a plurality of input fibers attached to the fiber entry block. Each of the plurality of input fibers is operable to support a different wavelength. The multispectral beam combiner also includes a collimator attached to the prism body. The collimator is operable to reflect and collimate light propagating from the fiber entry block. The multispectral beam combiner further includes an immersion grating operable to diffract light propagating from the collimator. The output surface of the prism body is operable to pass light propagating from the immersion grating.

Claims (27)

1. A multispectral beam combiner comprising:

a prism body having an output surface;

a fiber entry block attached to the prism body;

a plurality of input fibers attached to the fiber entry block, each of the plurality of input fibers operable to support a different wavelength;

a collimator attached to the prism body, wherein the collimator is operable to reflect and collimate light propagating from the fiber entry block to produce collimated light beams;

an immersion grating operable to receive the collimated light beams and diffract the collimated light beams propagating from the collimator; and

a protective cap disposed over the immersion grating;

wherein the output surface of the prism body is operable to pass light propagating from the immersion grating.

2. The multispectral beam combiner of claim 1 wherein the fiber entry block, the prism body, the collimator, and the immersion grating form a monolithic structure.

3. The multispectral beam combiner of claim 1 wherein the fiber entry block comprises a total internal reflection surface.

4. The multispectral beam combiner of claim 1 wherein the fiber entry block comprises a planar surface and the plurality of input fibers are attached to the planar surface.

5. The multispectral beam combiner of claim 1 wherein the collimator is characterized by a high reflectivity and operable to collimate diverging light beams from each of the plurality of input fibers.

6. The multispectral beam combiner of claim 1 wherein the immersion grating is attached to the prism body.

7. The multispectral beam combiner of claim 1 wherein the protective cap defines a gas-filled gap between the immersion grating and the protective cap.

8. A spectral beam combining system comprising:

a prism body having an input surface;

a fiber entry block attached to the prism body and operable to receive a plurality of input beams, each of the plurality of input beams being associated with one of a plurality of input fibers attached to the fiber entry block;

a collimator attached to the prism body, wherein the collimator is operable to reflect and collimate the plurality of input beams to produce collimated light beams;

an immersion grating defined on a second surface of the prism body and operable to receive the collimate light beams;

a protective cap disposed over the immersion grating; and

an output surface operable to pass light propagating from the immersion grating.

9. The spectral beam combining system of claim 8 wherein the input surface is a first surface of the prism body and the output surface is a third surface of the prism body.

10. The spectral beam combining system of claim 8 further comprising an imaging element optical coupled to the input surface of the prism body.

11. The spectral beam combining system of claim 8 wherein the plurality of input beams are laser beams characterized by differing wavelengths.

12. The spectral beam combining system of claim 8 wherein the input surface comprises a curved surface.

13. The spectral beam combining system of claim 8 wherein the output surface is partially reflective.

14. The spectral beam combining system of claim 8 wherein an optical path is defined between the immersion grating and the output surface, the spectral beam combining system further comprising a reflective surface disposed along the optical path.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 21, 2022
From: RAM PHOTONICS LLC
To: RAM PHOTONICS INDUSTRIAL, LLC
Reel/Frame 061840/0510 →
CORRECTIVE ASSIGNMENT TO CORRECT THE ASSIGNEE NAME PREVIOUSLY RECORDED AT REEL: 039828 FRAME: 0040. ASSIGNOR(S) HEREBY CONFIRMS THE ASSIGNMENT . Recorded Jul 15, 2022
From: MARCIANTE, JOHN R.
To: RAM PHOTONICS LLC
Reel/Frame 060670/0069 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 22, 2016
From: MARCIANTE, JOHN R.
To: RAM PHOTONICS, LLC
Reel/Frame 039828/0040 →
Continuity (2)
Provisional Application 62222103 · Sep 22, 2015
Related Publication 20170082863A1 · Mar 23, 2017
Cited By (2)
US 12,228,434 US 12,530,531