IP Library Granted Patent US 10,191,191
Granted Patent B2
US 10,191,191 · App. 14/688,425 · Granted Jan 29, 2019

Diffractive waveplate lenses and applications

Inventors: Nelson V. Tabirian (Winter Park, FL); Svetlana V. Serak (Oviedo, FL); Olena Uskova (Winter Park, FL); David E. Roberts (Apopka, FL); Anna Tabirian (Winter Park, FL); Diane M. Steeves (Franklin, MA); Brian R. Kimball (Shrewsbury, MA)
Assignees: Beam Engineering for Advanced Measurements Co.; The United States of America as Represented by the Secretary of the Army
G02B5/1833A61F2/1618A61F2/1654G02B3/0081G02B3/10G02B5/001G02B5/1828G02B5/3083G02B6/024G02B6/3534G02B6/3592G02B27/4205G02B27/4211G02B27/4216G02B27/4261G02C7/022G02C7/061G02C7/086G02C7/12G02C7/10G02C2202/16G02C2202/20
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 10,191,191
App. No.
14/688,425
Granted
Jan 29, 2019
Kind
B2
Abstract

Methods, systems and devices for diffractive waveplate lens and mirror systems allowing electronically focusing light at different focal planes. The system can be incorporated into a variety of optical schemes for providing electrical control of transmission. In another embodiment, the system comprises diffractive waveplate of different functionality to provide a system for controlling not only focusing but other propagation properties of light including direction, phase profile, and intensity distribution.

Claims (14)

1. An optical system comprising: a light source; one or more diffractive waveplate lenses with switchable optical power, each diffractive waveplate lenses having a thin film of birefringent material, a substrate for deposition of the birefringent material having an optical axis orientation in each thin film of said birefringent material spatially modulated in one or both transverse directions parallel to the substrate on which said thin film of said birefringent material is applied; and switching devices for selectively switching the optical power of said diffractive waveplate lenses, wherein each of k successive diffractive waveplate lens has a focusing power double of the focusing power of the adjacent lens to focus the beam of said light source to any of 2k focal planes, adjacent accessible focal planes being equally separated, for circularly polarized light.

2. The optical system as in claim 1 , wherein said light source is fiber coupled.

3. The optical system as in claim 2 wherein said one or more diffractive waveplate lenses are positioned such that a coupling between two optical fibers can be turned on and off by switching one or more of the diffractive lenses on and off.

4. The optical system as in claim 1 , wherein said switching devices for selectively switching the optical power of said waveplate lens system include variable phase retardation plates.

5. The optical system as in claim 4 wherein said one or more diffractive waveplate lenses are deposited on a surface of a variable phase retardation plate.

6. The optical system as in claim 4 further comprising:

an adjustment device to vary an optical transmittance of the system continuously from near approximately 0% to near approximately 100%.

7. The optical system as in claim 1 , further comprising: one or more diffractive wave plates selected from a group consisting of cycloidal diffractive waveplates, axial diffractive waveplates, axicon diffractive waveplates, and arrays of diffractive waveplates.

8. The optical system as in claim 1 , wherein said waveplate lenses are cylindrical.

9. The optical system as in claim 8 wherein a cylinder axes in alternating diffractive waveplate lenses are rotated with respect to each other.

10. The optical system as in claim 4 wherein the optical system is assembled onto a flat mirror to provide an electrically controlled focusing property.

11. A fiber optic device comprising: a light source; a polarization maintaining optical fiber; and one or more switchable diffractive waveplate lenses at an output facet of the optical fiber comprising a thin film of birefringent material and said diffractive waveplate lenses having an optical axis orientation that is spatially modulated in one or both transverse directions parallel to a substrate on which said thin film of birefringent material is applied; and a controller device for controlling a state of polarization in the optical fiber, wherein each of k successive diffractive waveplate lens has a focusing power double of the focusing power of the adjacent lens to focus the beam of said light source to any of 2k focal planes, adjacent accessible focal planes being equally separated, for circularly polarized light.

12. The fiber optic device as in claim 11 , wherein the controller device switches between one or more of an illuminator and focusing states.

13. The fiber optics device as in claim 11 , wherein the light source provides power for surgical application.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 15, 2016
From: KIMBALL, BRIAN R; STEEVES, DIANE M
To: US GOVERNMENT AS REPRESENTED BY THE SECRETARY OF THE ARMY
Reel/Frame 038289/0146 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 29, 2016
From: STEEVES, DIANE M.; KIMBALL, BRIAN R.
To: US ARMY NATICK SOLDIER RESEARCH, DEVELOPMENT AND ENGINEERING CENTER
Reel/Frame 037848/0698 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 10, 2015
From: TABIRIAN, NELSON V.; SERAK, SVETLANA V.; USKOVA, OLENA; ROBERTS, DAVID E.
To: BEAM ENGINEERING FOR ADVANCED MEASUREMENTS CO.
Reel/Frame 036060/0944 →
Continuity (2)
Provisional Application 61980062 · Apr 16, 2014
Related Publication 20160047956A1 · Feb 18, 2016
Cited By (1)
US 12,197,082