IP Library › Granted Patent US 12,222,517
Granted Patent B2
US 12,222,517 · App. 18/377,969 · Granted Feb 11, 2025

Laser system delivering ultra-short pulses along multiple beam delivery paths

Inventor: Matthew David Treiser (Mount Vernon, NY)
G02B27/09A61F9/008A61F9/00804G02B27/0025G02B27/10A61F9/0084
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Quick Facts
Patent No.
US 12,222,517
App. No.
18/377,969
Granted
Feb 11, 2025
Kind
B2
Abstract

A laser system includes a laser source generating a laser beam having ultra-short pulses; a laser delivery assembly optically receiving the laser beam and comprising: a beam splitter configured to split the laser beam between a first beam delivery path and a second beam delivery path; and at least one focusing lens optically coupled to the beam splitter and configured to focus the laser beam from each of the first beam delivery path and the second beam delivery path to a focal point on a predefined plane; wherein the first beam delivery path intersects the predefined plane at a first angle, the second beam delivery path intersects the predefined plane at a second angle, and a first pulse from the first beam delivery path and a second pulse from the second beam delivery path are coincident at the focal point.

Claims (35)

1. A laser system comprising:

a laser source generating a laser beam comprising ultra-short pulses;

a laser delivery assembly optically coupled to the laser source to receive the laser beam, the laser delivery assembly comprising:

a beam splitter configured to split the laser beam between a first beam delivery path and a second beam delivery path;

a first focusing lens optically coupled to the beam splitter and positioned within the first beam delivery path, the first focusing lens configured to focus the laser beam from the first beam delivery path to a focal point on a predefined plane; and

a second focusing lens optically coupled to the beam splitter and positioned within the second beam delivery path, the second focusing lens configured to focus the laser beam from the second beam delivery path to the focal point on the predefined plane, the second focusing lens being further configured for focus independently relative to the focus of the first focusing lens,

wherein the first beam delivery path intersects the predefined plane at a first angle, the second beam delivery path intersects the predefined plane at a second angle, and a first pulse from the first beam delivery path and a second pulse from the second beam delivery path are coincident at the focal point, and

wherein the second focusing lens focuses light relative to the focus of the first focusing lens independently to provide an avoidance of laser energy excitement by the first pulse and the second pulse in at least one of: above the focal point, or above the predefined plane.

2. The laser system of claim 1 , wherein the second angle is different from the first angle.

3. The laser system of claim 1 , wherein the second angle is equivalent to the first angle.

4. The laser system of claim 1 , wherein the first beam delivery path and the second beam delivery path have different path lengths.

5. The laser system of claim 1 , wherein at least one of: the first focusing lens, or the second focusing lens, is in a path of the laser beam before the beam splitter.

6. The laser system of claim 1 , wherein the beam splitter is in a path of the laser beam before at least one of: the first focusing lens, or the second focusing lens.

7. The laser system claim 1 , further comprising a positioning assembly, the laser delivery assembly coupled to the positioning assembly, wherein the positioning assembly is configured to move at least one of: the laser delivery assembly, the first focusing lens, or the second focusing lens.

8. The laser system of claim 7 , wherein the positioning assembly is configured to move the laser delivery assembly using at least one of: translation, or rotation.

9. The laser system of claim 7 , wherein the positioning assembly is configured to move at least one of: the first focusing lens, or the second focusing lens using at least one of: translation, or rotation.

10. The laser system of claim 7 , wherein the laser delivery assembly further comprises at least one mirror optically coupled to at least one of: the first focusing lens, or the second focusing lens, wherein the positioning assembly is configured to rotate the at least one mirror.

11. The laser system of claim 1 , wherein the laser source comprises a tunable pulsed laser source.

12. A method of modifying a substrate, the method comprising:

generating a laser beam comprising ultra-short pulses;

splitting the laser beam between a first beam delivery path and a second beam delivery path; and

focusing the laser beam from each of the first beam delivery path and the second beam delivery path to a focal point on a predefined plane within the substrate, the first beam delivery path intersecting the predefined plane at a first angle, and the second beam delivery path intersecting the predefined plane at a second angle, the focusing comprising adjusting the focus of the laser beam from the second beam path independently relative to the focus of the laser beam from the first beam delivery path;

wherein a first pulse from the first beam delivery path and a second pulse from the second beam delivery path are coincident at the focal point, and

wherein the laser beam from the second beam delivery path focuses light relative to the focus of the laser beam from the first beam delivery path independently to provide avoidance of laser energy excitement by the first pulse and the second pulse in at least one of: above the focal point, or above the predefined plane.

13. The method of claim 12 , further comprising:

moving at least one of the focal point within the predefined plane and the predefined plane by moving at least one of: a first focusing lens, or a second focusing lens; and

wherein the moving at least one of the focal point within the predefined plane and the predefined plane comprises at least one of: translating, or rotating, at least one of: the first focusing lens, or the second focusing lens.

14. The method of claim 12 , optically coupling at least one mirror to at least one of: the first focusing lens, or the second focusing lens; and

rotating, by the positioning assembly, the at least one mirror.

15. The method of claim 12 , wherein the laser source comprises a tunable pulsed laser source, the method further comprising tuning the pulsed laser source.

16. The method of claim 12 , wherein the second angle is different from the first angle.

17. The method of claim 12 , wherein the second angle is equivalent to the first angle.

18. The method of claim 12 , wherein the first beam delivery path and the second beam delivery path have different path lengths.

19. The method of claim 12 , wherein the at least one focusing lens is at least one of: the first focusing lens, or the second focusing lens, is in a path of the laser beam before the beam splitter.

20. The method of claim 12 , wherein the beam splitter is in a path of the laser beam before at least one of: the first focusing lens, or the second focusing lens as the at least one focusing lens.

Continuity (4)
Continuation 17831216 · Jun 2, 2022
Continuation 16564307 · Sep 9, 2019
Provisional Application 62728927 · Sep 10, 2018
Related Publication 20240036337A1 · Feb 1, 2024
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