IP Library Granted Patent US 9,658,461
Granted Patent B2
US 9,658,461 · App. 14/735,269 · Granted May 23, 2017

Optical alignment systems and methods for wavelength beam combining laser systems

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Quick Facts
Patent No.
US 9,658,461
App. No.
14/735,269
Granted
May 23, 2017
Kind
B2
Abstract

In various embodiments, wavelength beam combining laser systems incorporate fast-axis collimation lenses and slow-axis collimation lenses (either separately or as portions of a single hybrid lens) optically upstream of an optical rotation system to thereby reduce or minimize cross-talk in the combined output beam.

Claims (16)

1. A laser apparatus comprising:

an array of beam emitters each emitting a beam of a different wavelength, each emitted beam having a fast diverging axis and a slow diverging axis;

disposed optically downstream of the array of beam emitters, a fast-axis collimating lens for collimating the beams along the fast diverging axis;

disposed optically downstream of the fast-axis collimating lens, a slow-axis collimating lens for reducing divergence of the beams along the slow diverging axis, wherein a distance between the slow-axis collimating lens and the array of beam emitters is selected to incompletely collimate the beams along the slow diverging axis and thereby introduce cross-talk between the fast diverging axis and slow diverging axis of each of the beams;

disposed optically downstream of the slow-axis collimating lens, an optical rotator for rotating the beams, wherein a focal length of the optical rotator is selected to reduce the cross-talk arising from the incomplete collimation of the beams along the slow diverging axis;

disposed optically downstream of the optical rotator, focusing optics for focusing the rotated beams toward a dispersive element;

disposed optically downstream of the focusing optics, the dispersive element for receiving and dispersing the focused beams; and

disposed optically downstream of the dispersive element, a partially reflective output coupler for receiving the dispersed beams, reflecting a first portion thereof back toward the dispersive element, and transmitting a second portion thereof as a multi-wavelength output beam.

2. The laser apparatus of claim 1 , wherein the dispersive element comprises a diffraction grating.

3. The laser apparatus of claim 1 , wherein the focusing optics comprises at least one of a cylindrical lens or a cylindrical mirror.

4. The laser apparatus of claim 1 , wherein the optical rotator comprises two spaced-apart cylindrical lenses.

5. The laser apparatus of claim 4 , wherein a spacing between the two spaced-apart cylindrical lenses is less than approximately 2 mm.

6. The laser apparatus of claim 1 , wherein an index of refraction of the optical rotator is greater than approximately 1.5.

7. The laser apparatus of claim 1 , wherein a focal length of the optical rotator is less than approximately 2 mm.

8. The laser apparatus of claim 1 , further comprising an optical fiber into which the multi-wavelength output beam is coupled.

9. The laser apparatus of claim 1 , wherein the array of beam emitters comprises a diode bar, each of the beam emitters comprising a diode emitter within the diode bar.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 14, 2024
From: PANASONIC CORPORATION OF NORTH AMERICA
To: WBC PHOTONICS, INC.
Reel/Frame 069361/0616 →
MERGER Recorded Apr 13, 2023
From: TERADIODE, INC.
To: PANASONIC CORPORATION OF NORTH AMERICA
Reel/Frame 063311/0796 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 22, 2015
From: ZAMBUTO, JAMES; TAYEBATI, PARVIZ; CHANN, BIEN; DEUTSCH, MICHAEL; WANG, DAQING; LOCHMAN, BRYAN
To: TERADIODE, INC.
Reel/Frame 036852/0669 →