IP Library Granted Patent US 10,682,622
Granted Patent B1
US 10,682,622 · App. 15/585,745 · Granted Jun 16, 2020

Micro-fluid reactor with in-plane micro-lenses

Inventors: William Randall Gaillard (Madison, AL); John D. Williams (Decatur, AL)
Assignee: Board of Trustees of the University of Alabama, for and on behalf of the University of Alabama in Huntsville
B01J19/0093C12M21/18G02B3/06G02B6/32B01J2219/0097B01J2219/00801
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Quick Facts
Patent No.
US 10,682,622
App. No.
15/585,745
Granted
Jun 16, 2020
Kind
B1
Abstract

A micro-fluidic reactor may comprise a photosensitive glass substrate with a plurality of features produced by etching. The features may include micro-channels, micro-lenses, and slots for receiving optical fibers. During operation of the micro-fluidic reactor, the optical fibers may transmit optical signals for measuring characteristics of fluid reagents and reactions taking place. The micro-lenses may focus optical signals from the optical fibers to create an approximately collimated optical path for the optical signals, reducing optical spread and enhancing fiber-to-fiber optical power coupling.

Claims (9)

1. A micro-fluidic reactor, comprising:

a substrate having a micro-channel, a reaction chamber, a first lens, and a second lens;

a first optical fiber for receiving light from a light source, the first optical fiber passing through the substrate; and

a second optical fiber for receiving the light from the first optical fiber, the second optical fiber passing through the substrate,

wherein the first optical fiber and the second optical fiber are positioned on opposite sides of the micro-channel or the reaction chamber such that the light passes from the first optical fiber through the micro-channel or the reaction chamber to the second optical fiber, wherein the first lens and the second lens are positioned within a path of the light from the first optical fiber to the second optical fiber, wherein the first lens is between (1) the first optical fiber and (2) the micro-channel or the reaction chamber, wherein the second lens is between (a) the second optical fiber and (b) the micro-channel or the reaction chamber, wherein the first lens is positioned to focus the light on the second lens, and wherein the second lens is positioned to focus the light on the second optical fiber.

2. The micro-fluidic reactor of claim 1 , wherein the first lens is configured to focus the light on the second lens such that the light when passing from the first lens through the micro-channel or the reaction chamber to the second lens is collimated.

3. The micro-fluidic reactor of claim 2 , wherein the first lens is positioned on a first wall of the micro-channel or the reaction chamber, and wherein the second lens is positioned on a second wall of the micro-channel or the reaction chamber.

4. The micro-fluidic reactor of claim 1 , wherein the first lens is a toric lens.

5. The micro-fluidic reactor of claim 4 , wherein the second lens is a toric lens.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 3, 2020
From: GAILLARD, WILLIAM RANDALL; WILLIAMS, JOHN D.
To: BOARD OF TRUSTEES OF THE UNIVERSITY OF ALABAMA, FOR AND ON BEHALF OF THE UNIVERSITY OF ALABAMA IN HUNTSVILLE
Reel/Frame 052306/0129 →
CONFIRMATORY LICENSE Recorded Dec 22, 2017
From: UNIVERSITY OF ALABAMA IN HUNTSVILLE
To: NATIONAL SCIENCE FOUNDATION
Reel/Frame 044949/0201 →