IP Library Granted Patent US 9,515,447
Granted Patent B2
US 9,515,447 · App. 13/399,662 · Granted Dec 6, 2016

Titanium-doped amorphous aluminum nitride microlaser device and method for making and using same

Inventors: Muhammad Maqbool (Muncie, IN); Kyle Main (Parker City, IN)
Assignee: Ball State Innovation Corporation
H01S3/0627H01S3/0632H01S3/061H01S3/0621H01S3/083H01S3/094H01S3/1625H01S3/17
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Quick Facts
Patent No.
US 9,515,447
App. No.
13/399,662
Granted
Dec 6, 2016
Kind
B2
Abstract

A microlaser system, including a microlaser, having an elongated generally cylindrical substrate, a thin dopant film encircling at least a portion of the substrate, and a pumping laser positioned to shine onto the thin film. The thin film is between about 2 and about 10 microns thick. When the pumping laser shines on the thin film, the thin film lases in whispering gallery mode. The dopant is preferably selected from the group including transition metals and rare-earth elements. In a most preferred embodiment, the thin film is titanium-doped amorphous aluminum nitride.

Claims (17)

1. A microlaser apparatus, comprising:

an amorphous aluminum nitride ring; and

a dopant distributed homogeneously in the amorphous aluminum nitride ring, wherein the dopant is Ti;

wherein the amorphous aluminum nitride ring has a diameter of 20 microns; and wherein the dopant is present in a concentration of 1 atomic percent.

2. The microlaser of claim 1 wherein energizing the dopant stimulates photon emission to yield laser output from the amorphous aluminum nitride ring.

3. The microlaser of claim 1 further comprising a support fiber extending through the amorphous aluminum nitride ring.

4. The microlaser of claim 3 wherein the support fiber is glass.

5. The microlaser of claim 1 wherein the microlaser is operationally connected to a system chosen from the group consisting of security systems, speed measurement systems, thermometers, distance measurement systems, night vision systems, astronomy systems, information technology systems, and signal application systems.

6. A semiconducting microlaser apparatus, comprising:

a cylindrical support fiber;

an amorphous semiconducting ring disposed around the support fiber; and

a dopant distributed homogeneously in the amorphous semiconducting ring, wherein the dopant is Ti;

wherein the dopant is present in a concentrations of 1 atomic percent.

7. The semiconducting microlaser apparatus of claim 6 , wherein the amorphous semiconducting ring has a diameter of 20 microns.

8. The semiconducting microlaser of claim 6 wherein energizing the dopant stimulates photon emission to yield laser output from the amorphous semiconducting ring.

9. The semiconducting microlaser of claim 6 wherein the support fiber is glass.

10. The semiconducting microlaser of claim 6 wherein the support fiber is a metallic electrical conductor.

Assignments (2)
NUNC PRO TUNC ASSIGNMENT Recorded Nov 1, 2016
From: BALL STATE UNIVERSITY BOARD OF TRUSTEES
To: BALL STATE INNOVATION CORPORATION
Reel/Frame 040184/0534 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 7, 2012
From: MAQBOOL, MUHAMMAD; MAIN, KYLE
To: BALL STATE UNIVERSITY BOARD OF TRUSTEES
Reel/Frame 028337/0105 →
Continuity (2)
Provisional Application 61444524 · Feb 18, 2011
Related Publication 20120274944A1 · Nov 1, 2012