IP Library › Granted Patent US 12,385,791
Granted Patent B2
US 12,385,791 · App. 17/758,933 · Granted Aug 12, 2025

Rayleigh-Raman polychromatic laser guide star

Inventors: Michael Hart (Tucson, AZ); Lennon Reinhart (Tucson, AZ)
Assignee: Arizona Board of Regents on Behalf of the University of Arizona
G01J9/00G02B27/14
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Quick Facts
Patent No.
US 12,385,791
App. No.
17/758,933
Granted
Aug 12, 2025
Kind
B2
Abstract

Methods, devices and systems are described that enable improved determination of wavefront errors associated with light traveling through turbulent media, such as through the atmosphere. The described systems use a Rayleigh-Raman polychromatic laser guide star (RRPLGS) to measure the tilt at the wavelength of observation by making use of the dispersion of the refractive index of air and differential tilt measurements at multiple combinations of wavelengths based on the Rayleigh and Raman back-scattered light. The described RRPLGS systems have a number of advantages, including scalability of returned flux and flexibility in selection of short wavelengths, allowing for a combination of multiple tilt measurements, and enabling characterization of the turbulent media without relying on photons from the object of interest.

Claims (89)

1. A method for determining wavefront tilt in a system that utilizes a laser guide star, comprising:

projecting one or more laser beams in a direction of an object of interest, each laser beam forming a Rayleigh-Raman polychromatic laser guide star (RRPLGS);

receiving light associated with the one or more laser beams after undergoing Rayleigh and Raman scattering through a region of atmosphere;

separating spectral components of the received scattered light to obtain at least one Rayleigh-scattered component and at least one Raman-scattered component;

using one or more sensors to determine a wavefront error associated with the at least one Rayleigh-scattered component and the at least one Raman-scattered component; and

determining an estimate of the wavefront tilt based on a combination of the wavefront errors determined for the Rayleigh-scattered and the Raman-scattered components.

2. The method of claim 1 , wherein:

separating the spectral components results in obtaining at least two Raman-scattered components, and

determining the estimate of the wavefront tilt includes using the wavefront errors determined for each of the Rayleigh-scattered component and the at least two Raman-scattered components.

3. The method of claim 1 , comprising:

projecting more than one laser beam in the direction of the object of interest, wherein each laser beam is associated with a corresponding Rayleigh scattering wavelength and one or more Raman scattering wavelengths;

receiving light associated with each laser beam after undergoing Rayleigh and Raman scattering through the region of atmosphere;

separating spectral components of the received scattered light to obtain a plurality of Rayleigh-scattered components and a plurality of Raman-scattered components;

using the one or more sensors to determine wavefront errors associated with each of the Rayleigh-scattered and the Raman-scattered components; and

determining the estimate of the wavefront tilt based on a combination of the wavefront errors determined for each of the Rayleigh-scattered and Raman-scattered components.

4. The method of claim 1 , wherein the one or more sensors includes a Shack-Hartmann wavefront sensor, a tilt-tip wavefront sensor or a pyramid wavefront sensor.

5. The method of claim 1 , wherein an output wavelength of the one or more laser beams is selected to be in the range spanning the ultraviolet to infrared region of electromagnetic radiation.

6. The method of claim 1 , wherein an output wavelength of the one or more laser beams is in an ultraviolet region of electromagnetic radiation.

7. The method of claim 1 , wherein:

a variance of the estimated tilt error is determined according to the following relationship:

σ

est

,

L

,

i

2

=

σ

diff

,

L

,

i

2

(

n

⁡

(

λ

o

)

-

1

n

⁡

(

λ

L

,

1

,

i

)

-

n

⁡

(

λ

L

,

2

,

i

)

)

2

,

where, n is the refractive index, λ o is the wavelength of observation, i is the i th measurement of the tilt at λ o , σ est,L,i 2 is the variance of the i th tilt measurement at the wavelength of observation for the L th laser beam in units of radians squared of angular error (radians squared of wavefront angle), λ L,1,i is the wavelength of the Rayleigh-scattered component for the L th laser beam in the i th tilt measurement, λ L,2,i is the wavelength of the Raman-scattered component for the L th laser beam in the i th tilt measurement, and σ diff,L,i 2 is the variance corresponding to the i th differential tilt for the L th laser,

where the differential tilt is the difference between the measured tilt at the λ L,2,i and λ L,1,i wavelengths.

8. The method of claim 1 , wherein separating the spectral components includes directing the received scattered light to one or more beam splitters, each beam splitter configured to allow one component of the received scattered light to be deflected away from the remaining portions of the received scattered light.

9. The method of claim 1 , wherein separating the spectral components includes using one or more narrow band filters, each narrow band filter allowing only one of the spectral components to pass therethrough.

10. The method of claim 1 , further comprising providing the estimate of the wavefront tilt to an adaptive optics system to effectuate a wavefront correction and to allow formation of an improved image of the object of interest.

11. The method of claim 1 , wherein the estimate of the wavefront tilt compensates for at least a portion of turbulence of the atmosphere.

12. The method of claim 1 , wherein the one or more laser beams include at least two laser beams that are produced using separate laser devices, each operating at a distinct wavelength.

13. The method of claim 1 , further including using an additional laser device for augmenting a power of the one or more laser beams, wherein the additional laser device is configured to operate at the same wavelength of one of the one or more laser beams.

14. A system for determining wavefront tilt, comprising:

one or more laser devices configured to project one or more laser beams in a direction of an object of interest and to form one or more Rayleigh-Raman polychromatic laser guide stars (RRPLGSs);

a telescope configured to receive light associated with the one or more laser beams after undergoing Rayleigh and Raman scattering through a region of atmosphere;

one or more filters or beam splitters positioned to receive at least a portion of the received scattered light and to separate spectral components of the received scattered light to obtain at least one Rayleigh-scattered component and at least one Raman-scattered component;

one or more sensors positioned to receive the at least one Rayleigh-scattered component and the at least one Raman-scattered component, and to produce one or more signals indicative of a wavefront error associated with the at least one Rayleigh-scattered component and at least one Raman-scattered component;

a processor and a memory comprising processor executable code, the processor executable code, upon execution by the processor, causing the processor to:

receive the one or more signals from the one or more sensors and to determine an estimate of the wavefront tilt based on a combination of the wavefront errors determined for the Rayleigh-scattered and Raman-scattered components.

15. The system of claim 14 , further comprising an adaptive optics subsection coupled to the processor, the adaptive optics subsection including deformable optical components that are configured to deform in response to formation signals from the processor based on the estimate of the wavefront tilt.

16. The system of claim 14 , further comprising an adaptive optics subsection coupled to the processor, the adaptive optics subsection including movable optical components that are configured to move in response to signals from the processor based on the estimate of the wavefront tilt.

17. The system of claim 14 , wherein the one or more sensors include a Shack-Hartmann wavefront sensor, a tilt-tip wavefront sensor or a pyramid wavefront sensor.

18. The system of claim 14 , wherein an output wavelength of the one or more laser devices is in an ultraviolet region of electromagnetic radiation.

19. The system of claim 14 , wherein the one or more laser devices include at least two laser devices, each operating at a distinct wavelength.

20. The system of claim 14 , wherein the one or more sensors includes a wavefront sensor and a plurality of tip/tilt sensors.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 12, 2022
From: HART, MICHAEL; REINHART, LENNON
To: ARIZONA BOARD OF REGENTS ON BEHALF OF THE UNIVERSITY OF ARIZONA
Reel/Frame 061398/0512 →
Continuity (2)
Provisional Application 62962652 · Jan 17, 2020
Related Publication 20230055616A1 · Feb 23, 2023
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Cited By (1)
US 12,689,436