IP Library Granted Patent US 8,537,446
Granted Patent B2
US 8,537,446 · App. 12/936,956 · Granted Sep 17, 2013

Multi-axis, large tilt angle, wafer level micromirror array for large scale beam steering applications

Inventors: Amit Lal (Ithaca, NY); Serhan M. Ardanuc (Ankara, TR)
Assignee: Cornell University
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 8,537,446
App. No.
12/936,956
Granted
Sep 17, 2013
Kind
B2
Abstract

A system ( 120 ) for reflecting or redirecting incident light, microwave or sound energy includes a first substrate ( 144 ) configured to support an array of reflective elements ( 130 ) that can be angularly displaced through a range of substantially ( 90 ) degrees in response to a reflector angle control signal and a controller programmed to generate the reflector angle control signal to achieve desired incident energy, beam or wavefront redirection. The reflective elements ( 130 ) preferably comprise MEMS micro-reflector elements hingedly or movably attached to the first substrate ( 130 ) and define a reflective surface that is aimed at the source of incident light, microwave or sound energy.

Claims (18)

1. A system for reflecting or redirecting incident light, microwave or sound energy, comprising:

(a) a first substrate configured to hingedly support a large tilt angle micromirror array comprising a plurality of reflective elements that are adapted to be angularly displaced through a range of substantially 90 degrees in response to a reflector angle control signal;

(b) a central or remote controller programmed to generate said reflector angle control signal to achieve a selected incident energy beam or wavefront redirection;

(c) wherein said reflective elements comprise MEMS minor elements hingedly attached to said first substrate at a proximal edge and defining a reflective surface with a distal edge opposite said proximal edge;

(d) wherein said MEMS minor elements each carry a central hinge positioned between said proximal edge and said distal edge, said central hinge being configured to hingedly retain a tail member having a hinge end opposite a movable base;

(e) and wherein said first substrate also includes a slider rail region for each mirror element tail member, said slider region being configured to slidably receive, engage and support said mirror element tail member in one of a selected plurality of tail member positions, such that each mirror element tail member position within said substrate's slider region corresponds with a defined mirror element angular displacement.

2. The system for reflecting or redirecting incident light, microwave or sound energy, of claim 1 , wherein said defined mirror angular displacement is substantially zero degrees when said mirror elements are lying substantially flat against said substrate.

3. The system for reflecting or redirecting incident light, microwave or sound energy, of claim 1 , wherein said defined mirror angular displacement is substantially ninety degrees when said mirror elements are erected to be substantially perpendicular to said substrate.

4. A system for reflecting or redirecting incident light, microwave or sound energy, comprising:

(a) a first substrate configured to hingedly support a large tilt angle micro-reflector array comprising a plurality of reflective elements that are adapted to be angularly displaced through a range of substantially 90 degrees in response to a reflector angle control signal;

(b) a central or remote controller programmed to generate said reflector angle control signal to achieve a selected incident energy beam or wavefront redirection;

(c) wherein said reflective elements comprise MEMS micro-reflector elements hingedly attached to said first substrate at a proximal edge and defining a reflective surface with a distal edge opposite said proximal edge;

(d) wherein said MEMS micro-reflector elements each carry a central hinge positioned between said proximal edge and said distal edge, said central hinge being configured to hingedly retain a tail member having a hinge end opposite a movable base;

(e) and wherein said first substrate also includes a slider rail region for each micro-reflector element tail member, said slider region being configured to slidably receive, engage and support said micro-reflector element tail member in one of a selected plurality of tail member positions, such that each micro-reflector element tail member position within said substrate's slider region corresponds with a defined micro-reflector element angular displacement.

5. The system for reflecting or redirecting incident light, microwave or sound energy, of claim 4 , wherein said defined micro-reflector angular displacement is substantially ninety degrees when said micro-reflector elements are erected to be substantially perpendicular to said substrate.

6. The system for reflecting or redirecting incident light, microwave or sound energy, of claim 4 , wherein said micro-reflectors are arrayed with very high fill-factor enabled by embedded actuators or actuators that reside off the planar area of the micro-reflectors.

7. The system for reflecting or redirecting incident light, microwave or sound energy, of claim 4 , wherein said reflector arrays are positionable for a selected re-directing orientation and then set to remain at that selected orientation without requiring consumption of power so zero power is necessary to keep micro-reflectors at a given angle; wherein power is needed only when position is changed.

8. The system for reflecting or redirecting incident light, microwave or sound energy, of claim 4 , wherein said micro-reflectors can be aimed at any angle or azimuth.

Assignments (2)
CONFIRMATORY LICENSE Recorded Dec 14, 2015
From: CORNELL UNIVERSITY
To: NATIONAL SCIENCE FOUNDATION
Reel/Frame 037283/0111 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 27, 2010
From: LAL, AMIT; ARDANUC, SERHAN M.
To: CORNELL UNIVERSITY
Reel/Frame 025537/0776 →
Continuity (2)
Provisional Application 61043379 · Apr 8, 2008
Related Publication 20110101253A1 · May 5, 2011