IP Library Granted Patent US 9,658,512
Granted Patent B2
US 9,658,512 · App. 14/165,615 · Granted May 23, 2017

Cycloidal diffractive waveplate and method of manufacture

Inventors: Nelson V. Tabirian (Winter Park, FL); Sarik R. Nersisyan (Winter Park, FL); Brian R. Kimball (Shrewsbury, MA); Diane M. Steeves (Franklin, MA)
Assignees: Beam Engineering for Advanced Materials Co.; The United States of America as Represented by the Secretary of the Army
G02F1/292G02F1/134363Y10T29/49155
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Quick Facts
Patent No.
US 9,658,512
App. No.
14/165,615
Granted
May 23, 2017
Kind
B2
Abstract

A cycloidal diffractive waveplate ( 50 ) comprising first and second substrate layers ( 52, 54 ), a liquid crystal layer ( 60 C, 60 H) provided between the first and second substrate layers, and transparent positive electrodes ( 56 ) and transparent negative electrodes ( 58 ) provided on the first substrate layer. The liquid crystal layer has a diffractive state ( 60 C) in which the optical axes of the liquid crystal molecules are periodically rotated across a plane of the waveplate and a non-diffractive state ( 60 H) in which the optical axes of the liquid crystal molecules are all orientated in the same direction in the plane of the waveplate. The electrodes ( 56, 58 ) are arranged in an alternating series, such that when an electric voltage is applied to the electrodes an electric field is produced in the plane of the waveplate and the liquid crystal layer is switched from the diffractive state to the non-diffractive state. A method of manufacturing the cycloidal diffractive waveplate is also provided.

Claims (17)

1. A method of fabricating a cycloidal diffractive waveplate, the method comprising:

forming a first substrate;

forming a plurality of transparent positive electrodes on the first substrate, and forming a plurality of transparent negative electrodes on the first substrate, the transparent positive electrodes and the transparent negative electrodes being arranged in an alternating series;

forming a second substrate without electrodes; and

forming a liquid crystal layer between the first substrate and the second substrate, the liquid crystal layer being formed of liquid crystal molecules each having an optical axis with positive dielectric anisotropy and the liquid crystal layer being formed with a periodic molecular structure, and

applying an electric voltage to the alternating series of the transparent positive electrodes and the transparent negative electrodes on the first substrate to switch the liquid crystal layer between a diffractive state in which the optical axes of the liquid crystal molecules are periodically rotated across a plane of the waveplate and a non-diffractive state in which the optical axes of the liquid crystal molecules are orientated in the same direction in the plane of the waveplate, wherein the applied electric voltage to the alternating series of the plurality of transparent positive electrodes and the plurality of transparent negative electrodes on the first substrate are configured to produce an electric field in the plane of the waveplate, and wherein the liquid crystal layer is switched between the diffractive state and the non-diffractive state.

2. The method of claim 1 , wherein transparent positive electrodes and transparent negative electrodes are formed by direct deposition of a transparent conductive material onto the first substrate.

3. The method of claim 1 , wherein the alternating series of the plurality of transparent positive electrodes and the plurality of transparent negative electrodes are arranged across the first substrate in a first direction and the liquid crystal layer has a modulation axis which is orientated in a second direction, substantially perpendicular to the first direction, within a plane of the diffractive waveplate.

4. The method of claim 1 , wherein the first substrate and the second substrate are each made from one of float glass, fused silica, polymer, and materials transparent for infrared wavelengths.

5. A cycloidal diffractive waveplate comprising:

a first substrate;

a second substrate;

a liquid crystal layer provided between the first substrate and the second substrate, the liquid crystal layer formed of liquid crystal molecules each having an optical axis with positive dielectric anisotropy and the liquid crystal layer having a periodic molecular structure, and wherein the liquid crystal layer has a diffractive state in which the optical axes of the liquid crystal molecules are rotated across a plane of the waveplate and a non-diffractive state in which the optical axes of the liquid crystal molecules are orientated in the same direction in the plane of the waveplate; and

a plurality of transparent positive electrodes and a plurality of transparent negative electrodes both being provided on the first substrate and the electrodes arranged in an alternating series, the second substrate without having electrodes, wherein an electric voltage applied to the alternating series of the plurality of transparent positive electrodes and the plurality of transparent negative electrodes on the first substrate are configured to produce an electric field in the plane of the waveplate, and the liquid crystal layer is switched from the diffractive state to the non-diffractive state.

6. The cycloidal diffractive waveplate of claim 5 , wherein said alternating series of the plurality of transparent positive electrodes and the plurality of transparent negative electrodes comprise a transparent conductive material directly deposited on the first substrate to form electrodes without affecting substrate areas without electrodes.

7. The cycloidal diffractive waveplate of claim 5 , wherein the alternating series of the plurality of transparent positive electrodes and the plurality of transparent negative electrodes are arranged across the first substrate in a first direction and the liquid crystal layer has a modulation axis which is orientated in a second direction, substantially perpendicular to the first direction, within a plane of the waveplate.

8. The cycloidal diffractive waveplate of claim 5 , wherein the first substrate and the second substrate are each made from one of float glass, fused silica, polymer, and materials transparent for infrared wavelengths.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 2, 2016
From: U.S. GOVERNMENT AS REPRESENTED BY THE SECRETARY OF THE ARMY
To: BEAM ENGINEERING FOR ADVANCED MEASUREMENTS CO.
Reel/Frame 039315/0053 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 28, 2014
From: TABIRIAN, NELSON V.; NERSYSYAN, SARIK; STEEVES, DIANE M; KIMBALL, BRIAN R
To: U.S. GOVERNMENT AS REPRESENTED BY THE SECRETARY OF THE ARMY
Reel/Frame 032057/0456 →
Continuity (2)
Provisional Application 61757259 · Jan 28, 2013
Related Publication 20140211145A1 · Jul 31, 2014