IP Library Granted Patent US 12,326,588
Granted Patent B2
US 12,326,588 · App. 17/009,029 · Granted Jun 10, 2025

Polarization manipulation of free-space electromagnetic radiation fields

Inventors: Jean-Michel Di Nicola (Livermore, CA); Alvin Erlandson (Livermore, CA); Joseph A. Menapace (Livermore, CA); Gabriel Mennerat (Gif-sur-Yvette, FR); John Arthur Marozas (Rochester, NY)
Assignees: Lawrence Livermore National Security, LLC; University of Rochester
G02B5/3083G01J4/04G02B27/286
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Quick Facts
Patent No.
US 12,326,588
App. No.
17/009,029
Granted
Jun 10, 2025
Kind
B2
Abstract

Technology is provided to transform spatially variable arbitrary polarization states and wavefront of a high-fluence, large-aperture laser beam to prescribed spatially resolved polarization states and wavefront at a specific position, with minimal losses. Technology is also provided to transform spatially resolved polarization states and wavefront at a specific position to spatially variable arbitrary polarization states and wavefront.

Claims (104)

1. An apparatus, comprising:

a laser system configured to produce a laser beam having a fluence of at least 100 mJ/cm 2 ;

a polarimetry system configured to determine an input distribution of input states of polarization of an input electromagnetic radiation field that is associated with the laser beam in an input plane transverse to a beam path of said input electromagnetic radiation field; and

at least one birefringent plate positioned parallel to said input plane and transverse to said beam path, wherein said at least one birefringent plate comprises an eigen-axis orientation and a spatially-varying thickness based at least in part on the input distribution of input states of polarization and configured such that when said input electromagnetic radiation field having said input distribution and having a fluence of at least 100 mJ/cm 2 propagates onto said at least one birefringent plate, said at least one birefringent plate will transform said input distribution into a predetermined target output distribution of output states of polarization to output the laser beam with the predetermined target output distribution of output states of polarization;

wherein the at least one birefringent plate includes at least a birefringent plate q that has a spatially-varying thickness at points (x,y) that deviates from a thickness that would provide neutral retardation of an integer multiple of 2π by an amount Δz q (x,y) that is defined by the following equation:

Δ

z

q

(

x

,

y

)

=

λ

δ

q

(

x

,

y

)

2

π

"\[LeftBracketingBar]"

n

e

,

q

-

n

o

,

q

"\[RightBracketingBar]"

wherein n e,q is a principal extraordinary refractive index and n o,q is a principal ordinary refractive index for the birefringent plate q, wherein λ is a wavelength of the laser beam, and wherein δ q (x,y) is the spatially-dependent phase difference between a fast axis and a slow axis at points (x,y) for the birefringent plate q, and wherein the spatially-varying thickness of the at least one birefringent plate produces spatially-dependent phase differences that transform the input distribution of input states of polarization into the predetermined target output distribution of output states of polarization.

2. The apparatus of claim 1 , wherein the polarimetry system comprises an imaging polarimetry system positioned to determine said input states of polarization.

3. The apparatus of claim 1 , wherein the laser system is configured to provide the laser beam at a fluence that is less than a damage threshold of a birefringent material forming said at least one birefringent plate.

4. The apparatus of claim 1 , wherein said spatially-varying thickness is produced by a manufacturing technique that enables control of material removal at 5 nm RMS.

5. The apparatus of claim 1 , wherein said spatially-varying thickness is produced by a magneto-rheological finishing (MRF) technique.

6. The apparatus of claim 1 , wherein said at least one birefringent plate comprises a plurality of birefringent plates, wherein each of said plurality of birefringent plates comprises two neutral axes, wherein each birefringent plate is formed to have a pre-computed thickness normal to said input plane, wherein said thickness is configured to be a local polarization transformer element that locally varies the optical retardation between said two neutral axes of each birefringent plate.

7. The apparatus of claim 6 , wherein each birefringent plate is made of a monolithic piece of birefringent material such that the eigen-axis orientation is the same across each birefringent plate.

8. The apparatus of claim 1 , wherein the at least one birefringent plate is configured to transform said input distribution into the predetermined target output distribution of output states of polarization having substantially uniform polarization.

9. The apparatus of claim 1 , wherein the at least one birefringent plate is positioned at a position where the polarimetry system is configured to determine the input distribution of input states of polarization of the input electromagnetic radiation field.

10. The apparatus of claim 1 , wherein the at least one birefringent plate is positioned where the beam is collimated.

11. The apparatus of claim 1 , wherein the laser system has a gain medium, wherein heat accumulation in the gain medium from operation of the laser system produces a polarization change in the laser beam; and wherein the at least one birefringent plate is configured to transform said input distribution into the predetermined target output distribution of output states of polarization to at least partially counter the polarization change caused by the heat accumulation in the gain medium.

12. A method, comprising:

producing a laser beam having a fluence of at least 100 mJ/cm 2 using a laser system;

determining, using a polarimetry system, an input distribution of input states of polarization of an input electromagnetic radiation field that is associated with the laser beam in an input plane transverse to a beam path of said input electromagnetic radiation field;

providing at least one birefringent plate positioned parallel to said input plane and transverse to said beam path, wherein said at least one birefringent plate has an eigen-axis orientation and a spatially-varying thickness based at least in part on the input distribution of input states of polarization and configured such that when said input electromagnetic radiation field having said input distribution propagates onto said at least one birefringent plate, said at least one birefringent plate will transform said input distribution into a predetermined target output distribution of output states of polarization; and

locating said at least one birefringent plate in said beam path of said input electromagnetic radiation field having a fluence of at least 100 mJ/cm 2 to produce said predetermined output distribution of output states of polarization in an output plane transverse to said beam path to output the laser beam with the predetermined target output distribution of output states of polarization;

wherein the at least one birefringent plate includes at least a birefringent plate q that has a spatially-varying thickness at points (x,y) that deviates from a thickness that would provide neutral retardation of an integer multiple of 2π by an amount Δz q (x,y) that is defined by the following equation:

Δ

z

q

(

x

,

y

)

=

λδ

q

(

x

,

y

)

2

π

"\[LeftBracketingBar]"

n

e

,

q

-

n

o

,

q

"\[RightBracketingBar]"

wherein n e,q is a principal extraordinary refractive index and n o,q is a principal ordinary refractive index for the birefringent plate q, wherein λ is a wavelength of the laser beam, and wherein δ q (x,y) is the spatially-dependent phase difference between a fast axis and a slow axis at points (x,y) for the birefringent plate q, and wherein the spatially-varying thickness of the at least one birefringent plate produces spatially-dependent phase differences that transform the input distribution of input states of polarization into the predetermined target output distribution of output states of polarization.

13. The method of claim 12 , wherein the step of determining comprises utilizing an imaging polarimetry method to determine said input states of polarization.

14. The method of claim 12 , wherein said input electromagnetic radiation field comprises a fluence that is less than a damage threshold of a birefringent material forming said at least one birefringent plate.

15. The method of claim 12 , wherein said spatially-varying thickness is produced by a manufacturing technique that enables control of material removal at 5 nm RMS.

16. The method of claim 12 , wherein said spatially-varying thickness is produced by the magneto-rheological finishing (MRF) technique.

17. The method of claim 12 , wherein said at least one birefringent plate comprises a plurality of birefringent plates, wherein each birefringent plate of said plurality of birefringent plates comprises two neutral axes, wherein each birefringent plate is formed to have a pre-computed thickness normal to said input plane, wherein said thickness acts as a local polarization transformer element by locally varying the optical retardation between said two neutral axes of each birefringent plate.

18. The method of claim 17 , wherein each birefringent plate is made of a monolithic piece of a birefringent material such that said eigen-axis orientation is the same across each birefringent plate.

19. The method of claim 12 , comprising transforming, using the at least one birefringent plate, said input distribution into the predetermined target output distribution of output states of polarization having substantially uniform polarization.

20. The method of claim 12 , comprising locating the at least one birefringent plate at the position where the polarimetry system is configured to determine the input distribution of input states of polarization of the input electromagnetic radiation field.

21. The method of claim 12 , wherein the at least one birefringent plate is positioned where the beam is collimated.

22. The method of claim 12 , wherein the laser system has a gain medium, wherein heat accumulation in the gain medium from operation of the laser system produces a polarization change in the laser beam; and wherein locating the at least one birefringent plate in the beam path transforms said input distribution into the predetermined target output distribution of output states of polarization to at least partially counter the polarization change caused by the heat accumulation in the gain medium.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 27, 2022
From: DI NICOLA, JEAN-MICHEL G.; ERLANDSON, ALVIN C.; MENAPACE, JOSEPH A.; MENNERAT, GABRIEL
To: LAWRENCE LIVERMORE NATIONAL SECURITY, LLC
Reel/Frame 060646/0286 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 27, 2022
From: MAROZAS, JOHN ARTHUR
To: UNIVERSITY OF ROCHESTER
Reel/Frame 060646/0802 →
CONFIRMATORY LICENSE (SEE DOCUMENT FOR DETAILS) Recorded Oct 1, 2020
From: LAWRENCE LIVERMORE NATIONAL SECURITY, LLC
To: U.S. DEPARTMENT OF ENERGY
Reel/Frame 053968/0323 →
Continuity (2)
Provisional Application 62967774 · Jan 30, 2020
Related Publication 20210239893A1 · Aug 5, 2021
References Cited (35)
US 4925523A · Braren · 1990 [cited by examiner]
US 5964749A · Eckhouse · 1999 [cited by examiner]
US 6252712B1 · Fürter et al. · 2001 [cited by applicant]
US 7324181B2 · Lazarev et al. · 2008 [cited by applicant]
US 7570427B2 · Hasman · 2009 [cited by examiner]
US 8427769B1 · Stultz · 2013 [cited by applicant]
US 11016230B2 · Saitoh · 2021 [cited by examiner]
US 20030104318A1 · Allan · 2003 [cited by examiner]
US 20040165269A1 · Hasman · 2004 [cited by examiner]
US 20050195480A1 · Brown · 2005 [cited by examiner]
US 20060126183A1 · Hasman · 2006 [cited by examiner]
US 20070081114A1 · Fiolka · 2007 [cited by examiner]
US 20070115551A1 · Spilman · 2007 [cited by examiner]
US 20070146676A1 · Tanitsu et al. · 2007 [cited by applicant]
US 20070159694A1 · Brown · 2007 [cited by examiner]
US 20070183017A1 · Hembt · 2007 [cited by applicant]
US 20110255390A1 · Hirai · 2011 [cited by examiner]
US 20130027656A1 · Escuti · 2013 [cited by examiner]
US 20130114140A1 · Auzas · 2013 [cited by examiner]
US 20140139788A1 · Tatzel et al. · 2014 [cited by applicant]
US 20140153097A1 · Beresna · 2014 [cited by examiner]
US 20140285878A1 · Escuti et al. · 2014 [cited by applicant]
US 20140361152A1 · Maleev et al. · 2014 [cited by applicant]
US 20160011353A1 · Escuti · 2016 [cited by examiner]
US 20200150054A1 · Leong · 2020 [cited by examiner]
US 20200185611A1 · Yi · 2020 [cited by examiner]
EP 0937999 · 1999 [cited by applicant]
EP 1716457 · 2011 [cited by applicant]
EP 2605058 · 2013 [cited by applicant]
EP 2705393A1 · 2014 [cited by examiner]
KR 1020070003794 · 2007 [cited by applicant]
International Search Report in PCT/US2021/015016 dated Jul. 20, 2021 in 3 pages. [cited by applicant]
Written Opinion in PCT/US2021/015016 dated Jul. 20, 2021 in 5 pages. [cited by applicant]
Schaefer et al., “Measuring the Stokes polarization parameters”, Am J. Physics 75 (2), pp. 163-168, Feb. 2007. [cited by applicant]
Extended European Search Report received n EP Application No. EP 21747000 dated Jan. 26, 2024 in 8 pages. [cited by applicant]