IP Library › Granted Patent US 11,366,254
Granted Patent B2
US 11,366,254 · App. 16/746,366 · Granted Jun 21, 2022

High-efficiency wide-angle beam steering system

Inventors: Nelson Tabirian (Winter Park, FL); David E. Roberts (Apopka, FL); Sarik Nersisyan (Oviedo, FL); Olena Uskova (Winter Park, FL); Anna Tabirian (Winter Park, FL)
Assignee: BEAM ENGINEERING FOR ADVANCED MEASUREMENTS CO.
G02B5/1833A61F2/1618A61F2/1654G02B3/0081G02B3/10G02B5/001G02B5/1828G02B5/3083G02B6/024G02B6/3534G02B6/3592G02B27/4205G02B27/4211G02B27/4216G02B27/4261G02C7/022G02C7/061G02C7/086G02C7/12G02C7/10G02C2202/16G02C2202/20
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Quick Facts
Patent No.
US 11,366,254
App. No.
16/746,366
Granted
Jun 21, 2022
Kind
B2
Abstract

Optical beam steering and focusing systems, devices, and methods that utilize diffractive waveplates are improved to produce high efficiency at large beam deflection angles, particularly around normal incidence, by diffractive waveplate architectures comprising a special combination of liquid crystal polymer diffractive waveplate both layers with internal twisted structure and at a layer with uniform structure.

Claims (40)

1. A beam steering system comprising:

an optical assembly that includes at least one cycloidal diffractive waveplate, each cycloidal diffractive waveplate having three functional layers, in all of which an optical anisotropy axis is parallel to a surface of the cycloidal diffractive waveplate;

in outer two layers of at least one cycloidal diffractive waveplate, the optical anisotropy axis has an orientation varying linearly with position in a direction perpendicular to the surface of the cycloidal diffractive waveplate;

in an inner layer of at least one cycloidal diffractive waveplate, the optical anisotropy axis orientation having no variation with position in the direction perpendicular to the surface of the cycloidal diffractive waveplate;

a twist angle of the optical anisotropy axis orientation in one of the two outer layers of at least one cycloidal diffractive waveplate being equal in magnitude and opposite in sign to the twist angle of the optical anisotropy axis orientation of the other outer layer of the cycloidal diffractive waveplate; and

a product of thickness and birefringence of the outer two layers of at least one of the cycloidal diffractive waveplates being about 30% of an intended operating wavelength of the beam steering system;

a product of the thickness and birefringence of the inner layer of the at least one cycloidal diffractive waveplate being about 63% of the intended operating wavelength of the beam steering system;

an absolute value of the angle through which the optical anisotropy axis twists in the two outer layers of at least one cycloidal diffractive waveplate being about 82 degrees; and

a controller assembly configured and arranged such that propagation direction of a beam of optical radiation traversing the optical assembly is changed by a selected angle.

2. The beam steering system of claim 1 , wherein the optical assembly comprises

a first cycloidal diffractive waveplate and a second cycloidal diffractive waveplate, the first cycloidal diffractive waveplate receiving a normally incident optical beam having a polarization volume grating structure providing high diffraction efficiency at a selected operating wavelength of the beam steering system;

the optical assembly includes components so that the rotational positions of the first and the second cycloidal diffractive waveplates are independently controlled by the controller assembly.

3. A beam steering system comprising:

an optical assembly that includes at least one cycloidal diffractive waveplate, each cycloidal diffractive waveplate having three functional layers, in all of which an optical anisotropy axis is parallel to a surface of the cycloidal diffractive waveplate;

in outer two layers of at least one cycloidal diffractive waveplate, the optical anisotropy axis has an orientation varying linearly with position in a direction perpendicular to the surface of the cycloidal diffractive waveplate;

in an inner layer of at least one cycloidal diffractive waveplate, the optical anisotropy axis orientation having no variation with position in the direction perpendicular to the surface of the cycloidal diffractive waveplate;

a twist angle of the optical anisotropy axis orientation in one of the two outer layers of at least one cycloidal diffractive waveplate being equal in magnitude and opposite in sign to the twist angle of the optical anisotropy axis orientation of the other outer layer of the cycloidal diffractive waveplate; and

a controller assembly configured and arranged such that propagation direction of a beam of optical radiation traversing the optical assembly is changed by a selected angle, wherein the optical assembly comprises:

a first set of N non-switchable cycloidal diffractive waveplates, all of which include lines of constant optical anisotropy axis orientation, the lines being parallel to each other both over an entire area of each non-switchable cycloidal diffractive waveplate, and among all members of the first set of N non-switchable cycloidal diffractive waveplates;

each member of the first set of N non-switchable cycloidal diffractive waveplates being preceded along a path of optical radiation propagating through the beam steering system by a switchable polarization converter that in one state converts left-hand circularly-polarized optical radiation to right-hand circularly-polarized optical radiation, and right-hand circularly-polarized optical radiation to left-hand circularly polarized optical radiation, and in the other state passes optical radiation without changing its polarization;

the number N being a positive integer equal to or greater than one.

4. The beam steering system of claim 1 , wherein the optical assembly comprises:

a first set of N non-switchable cycloidal diffractive waveplates, all of which include lines of constant optical anisotropy axis orientation, the lines being parallel to each other both over an entire area of each non-switchable cycloidal diffractive waveplate, and among all members of the first set of N non-switchable cycloidal diffractive waveplates;

each member of the first set of N non-switchable cycloidal diffractive waveplates being preceded along a path of optical radiation propagating through the beam steering system by a switchable polarization converter that in one state converts left-hand circularly-polarized optical radiation to right-hand circularly-polarized optical radiation, and right-hand circularly-polarized optical radiation to left-hand circularly polarized optical radiation, and in the other state passes optical radiation without changing its polarization; and

the number N being a positive integer equal to or greater than one.

5. The beam steering system of claim 3 , further comprising:

a second set of N non-switchable cycloidal diffractive waveplates, all of which include lines of constant optical anisotropy axis orientation, the lines being parallel to each other both over an entire area of each non-switchable cycloidal diffractive waveplate of the second set of N non-switchable cycloidal diffractive waveplates, and between each member of the second set of N non-switchable cycloidal diffractive waveplates, the lines of constant optical anisotropy axis orientation in the second set of non-switchable cycloidal diffractive waveplates being orthogonal to the lines of constant optical anisotropy axis orientation in the first set of non-switchable cycloidal diffractive waveplates;

each member of the second set of N non-switchable cycloidal diffractive waveplates being preceded along a path of optical radiation propagating through the optical assembly of the beam steering system by a switchable polarization converter that in one state converts left-hand circularly-polarized optical radiation to right-hand circularly-polarized optical radiation, and right-hand circularly-polarized optical radiation to left-hand circularly polarized optical radiation, and in the other state passes optical radiation without changing its polarization.

6. The beam steering system of claim 4 , further comprising:

a second set of N non-switchable cycloidal diffractive waveplates, all of which include lines of constant optical anisotropy axis orientation, the lines being parallel to each other both over an entire area of each non-switchable cycloidal diffractive waveplate of the second set of N non-switchable cycloidal diffractive waveplates, and between each member of the second set of N non-switchable cycloidal diffractive waveplates, the lines of constant optical anisotropy axis orientation in the second set of non-switchable cycloidal diffractive waveplates being orthogonal to the lines of constant optical anisotropy axis orientation in the first set of non-switchable cycloidal diffractive waveplates;

each member of the second set of N non-switchable cycloidal diffractive waveplates being preceded along a path of optical radiation propagating through the optical assembly of the beam steering system by a switchable polarization converter that in one state converts left-hand circularly-polarized optical radiation to right-hand circularly-polarized optical radiation, and right-hand circularly-polarized optical radiation to left-hand circularly polarized optical radiation, and in the other state passes optical radiation without changing its polarization.

7. An optical lens system comprising:

at least one diffractive waveplate lens having three functional layers, in all of which an optical anisotropy axis is parallel to a surface of the at least one diffractive waveplate lens

in outer two layers of the at least one of the diffractive waveplate lenses, the optical anisotropy axis orientation varying linearly with position in a direction perpendicular to a surface of the diffractive waveplate lens;

in an inner layer of the at least one diffractive waveplate lens, the optical anisotropy axis orientation having no variation with position in a direction perpendicular to a surface of the at least one diffractive waveplate lens;

a twist angle of the optical anisotropy axis orientation in one of the two outer layers of the at least one of the diffractive waveplate lenses being equal in magnitude and opposite in sign to a twist angle of the optical anisotropy axis orientation of the other outer layer of the at least one diffractive waveplate lens;

a product of thickness and birefringence of the outer two layers of the at least one diffractive waveplate lens being about 30% of a selected operating wavelength of the optical lens system;

a product of thickness and birefringence of the inner layer of the at least one diffractive waveplate lens being about 63% of the selected operating wavelength of the optical lens system; and

an absolute value of an angle through which the optical anisotropy axis twists in the two outer layers of the at least one diffractive waveplate lens being about 82 degrees.

8. The beam steering system of claim 1 , with an adjustment of the angles through which the orientation of the optical anisotropy axis varies within the three layers of the at least one cycloidal diffractive waveplate, the adjustment of the angles being such that the diffraction efficiency is approximately the same for a positive angle of incidence as for a negative angle of incidence.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 17, 2020
From: TABIRIAN, NELSON V.; ROBERTS, DAVID E.; NERSISYAN, SARIK; USKOVA, OLENA; TABIRIAN, ANNA
To: BEAM ENGINEERING FOR ADVANCED MEASUREMENTS CO.
Reel/Frame 051549/0414 →
Continuity (7)
Continuation In Part 16220995 · Dec 14, 2018
Continuation 14688425 · Apr 16, 2015
Continuation In Part 14688197 · Apr 16, 2015
Continuation In Part 13916627 · Jun 13, 2013
Continuation 12697083 · Jan 29, 2010
Provisional Application 61980062 · Apr 16, 2014
Related Publication 20200150324A1 · May 14, 2020
Cited By (1)
US 12,546,990