IP Library Granted Patent US 12,494,615
Granted Patent B2
US 12,494,615 · App. 18/129,214 · Granted Dec 9, 2025

Optical phased array dynamic beam shaping with noise correction

Inventors: Eyal Shekel (Beit Zayit, IL); Benayahu Urbach (Jerusalem Country, IL); Yaniv Vidne (Petach Tikva, IL); Ran Vered (Nehalim, IL); Avisar Shapira (Efrat, IL); Yehuda Elitzur (Givat Haroe, IL); Elimeleh Keller (Rishon le Zion, IL)
Assignee: CIVAN ADVANCED TECHNOLOGIES LTD.
H01S3/1305H01S3/1307H01S3/2383H01S3/10053H01S3/2308H01S2301/02
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Quick Facts
Patent No.
US 12,494,615
App. No.
18/129,214
Granted
Dec 9, 2025
Kind
B2
Abstract

A laser system including a seed laser, a laser beam splitting and combining subsystem receiving an output from the seed laser and providing a combined laser output having noise and a noise cancellation subsystem operative to provide a noise cancellation phase correction output based on taking into consideration the noise at intermittent times, the laser beam splitting and combining subsystem varying a phase of the combined laser output during time interstices between the intermittent times.

Claims (33)

1 . A laser system comprising:

an optical phased array laser comprising:

a seed laser;

a laser beam splitting and combining subsystem receiving a laser output from said seed laser and providing a combined laser output, said laser beam splitting and combining system varying a phase of said combined laser output to provide a phase varied combined laser output; and

an optical element operative to;

receive said phase varied combined laser output and focus said phase varied combined laser output at a focal point on a material, said combined laser output not being focused, by said optical element, at said focal point on said material in the absence of said varying of said phase, and

receive laser beams backscattered from said material and not focus said received laser beams backscattered from said material on said optical phased array laser, thereby preventing damage by said backscattered laser beams to said optical phased array laser.

2 . A laser system according to claim 1 , wherein said optical element is configured, in said absence of said varying of said phase, to focus said combined laser output at a focal point not coincident with said material.

3 . A laser system according to claim 1 , wherein said laser beam splitting and combining subsystem is operative, by said varying of said phase, for modifying a shape of wavefronts of said combined laser output, thereby modifying said focus.

4 . A laser system according to claim 1 , wherein said laser beam splitting and combining subsystem is additionally operative, by said varying of said phase, to dynamically control a position and a shape of a far field intensity pattern of said combined laser output.

5 . A laser cutting system comprising a laser system according to claim 1 , wherein said material comprises a workpiece.

6 . A laser additive manufacturing system comprising a laser system according to claim 1 , wherein said material comprises a workpiece.

7 . A laser welding system comprising a laser system according to claim 1 , wherein said material comprises a workpiece.

8 . A free-space optical communication system comprising at least one laser system according to claim 1 .

9 . A laser system according to claim 1 , wherein said optical element is operative to focus said phase varied combined laser output to initially converge to a narrowest point thereof at said focal point, said focal point being coincident with said material.

10 . A laser system according to claim 1 , and also comprising a noise cancellation subsystem operative to provide a noise cancellation phase correction output based on taking into consideration noise in said combined laser output at intermittent times, and to apply said noise cancellation phase correction output to different sub-beams of said combined laser output at different ones of said intermittent times,

said laser beam splitting and combining subsystem varying said phase of said combined laser output during time interstices between said intermittent times to provide spatial modulation of said combined laser output.

11 . A method for focusing of laser beams in a laser system comprising:

receiving a laser output from a seed laser;

splitting and combining said laser output to provide a combined laser output;

varying a phase of said combined laser output to provide a phase varied combined laser output;

focusing, by an optical element, said phase varied combined laser output at a focal point on a material, said combined laser output not being focused by said optical element at said focal point on said material in the absence of said varying of said phase; and

receiving, by said optical element, laser beams backscattered from said material and not focusing by said optical element said received laser beams backscattered from said material on said optical phased array laser, thereby preventing damage by said backscattered laser beams to said optical phased array laser.

12 . A method according to claim 11 , wherein said optical element is configured, in said absence of said varying of said phase, to focus said combined laser output at a focal point not coincident with said material.

13 . A method according to claim 11 , wherein said varying of said phase comprises modifying a shape of wavefronts of said combined laser output, thereby modifying said focus.

14 . A method according to claim 11 , and also comprising dynamically controlling a position and a shape of a far field intensity pattern of said combined laser output, by way of said varying of said phase.

15 . A method for laser cutting comprising the method of claim 11 , wherein said material comprises a workpiece.

16 . A method for additive manufacturing comprising the method of claim 11 , wherein said material comprises a workpiece.

17 . A method for laser welding comprising the method of claim 11 , wherein said material comprises a workpiece.

18 . A method for free space optical communication comprising the method of claim 11 .

19 . A method according to claim 11 , and also comprising focusing, by said optical element, said phase varied combined laser output to initially converge to a narrowest point thereof at said focal point, said focal point being coincident with said material.

20 . A method according to claim 11 , and also comprising applying a noise cancellation phase correction output to said combined laser output based on taking into consideration noise in said combined laser output at intermittent times, said applying comprising applying said noise cancellation phase correction output to different sub-beams of said combined laser output at different ones of said intermittent times; and

additionally performing said varying said phase of said combined laser output during time interstices between said intermittent times, thereby providing spatial modulation of said combined laser output.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 31, 2023
From: SHEKEL, EYAL; URBACH, BENAYAHU; VIDNE, YANIV; VERED, RAN; SHAPIRA, AVISAR; ELITZUR, YEHUDA; KELLER, ELIMELEH
To: CIVAN ADVANCED TECHNOLOGIES LTD.
Reel/Frame 063185/0100 →
Priority Claims (3)
IL 255496 · Nov 7, 2017 · national
IL 256107 · Dec 4, 2017 · national
IL 258936 · Apr 25, 2018 · national
Continuity (5)
Continuation 16761944
Provisional Application 62702957 · Jul 25, 2018
Provisional Application 62684341 · Jun 13, 2018
Provisional Application 62594167 · Dec 4, 2017
Related Publication 20230283038A1 · Sep 7, 2023
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