IP Library Granted Patent US 10,416,082
Granted Patent B2
US 10,416,082 · App. 15/665,095 · Granted Sep 17, 2019

Device and methods of detection of airborne agents

Inventors: Carl D. Meinhart (Santa Barbara, CA); Brian Piorek (Santa Barbara, CA); Seung Joon Lee (Santa Barbara, CA); Martin Moskovits (Santa Barbara, CA); Sanjoy Banerjee (Santa Barbara, CA); Juan Santiago (Stanford, CA)
Assignees: The Regents of the University of California; Board of Trustees of the Leland Stanford Junior University
G01N21/658G01N21/05G01N33/0057G01N21/0332G01N2021/0346G01N2201/06113G01N2201/1087Y10S977/902
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Quick Facts
Patent No.
US 10,416,082
App. No.
15/665,095
Granted
Sep 17, 2019
Kind
B2
Abstract

Provided are methods, devices and systems that utilize free-surface fluidics and SERS for analyte detection with high sensitivity and specificity. The molecules can be airborne agents, including but not limited to explosives, narcotics, hazardous chemicals, or other chemical species. The free-surface fluidic architecture is created using an open microchannel, and exhibits a large surface to volume ratio. The free-surface fluidic interface can filter interferent molecules, while concentrating airborne analyte molecules. The microchannel flow enables controlled aggregation of SERS-active probe particles in the flow, thereby enhancing the detector's sensitivity.

Claims (23)

1. A free-surface detection device comprising:

a substrate;

a fluid flow channel having a first end and a second end located in or on the substrate;

at least one free-surface interface region located between the first end and the second end, wherein the free-surface interface region is open on at least one side to atmospheric air comprising an analyte;

at least one temperature control element located in the at least one free-surface interface region; and

at least one controller in electrical and/or thermal communication with the at least one temperature control element to provide a controlled local evaporation rate, wherein the analyte is concentrated in the fluid flow channel due to said controlled evaporation rate.

2. The device of claim 1 , further comprising at least one valve upstream or downstream of the at least one temperature control element in the fluid flow channel.

3. The device of claim 1 , wherein the at least one free-surface region is in the fluid flow channel and wherein the at least one free-surface region comprises at least one wall.

4. The device of claim 3 , wherein a surface chemistry of the at least one wall comprises a modification to control fluid flow.

5. The device of claim 4 , wherein the modification comprises a change in hydrophobicity and/or hydrophilicity along the at least one wall's surface.

6. The device of claim 1 , further comprising:

at least one excitation area, wherein electromagnetic energy excites a SERS probe in a fluid in the fluid flow channel;

at least one detection area for detecting emitted spectra; and

at least one detector in optical communication with the at least one detection area.

7. The device of claim 6 , wherein the at least one detector detects the presence of one or more analytes absorbed in a fluid in the fluid flow channel by a technique selected from the group consisting of Raman spectroscopy or surface enhanced Raman scattering (“SERS”) measurements of a probe that is contained in the fluid; electrochemical analysis techniques; fluorescent chemical marker techniques; fluorescence quenching; redox-labeled nucleic acid binding techniques; X-Ray absorption techniques; IR, visible, and UV electromagnetic radiation absorption techniques; mass spectroscopy techniques; liquid chromatography techniques; flame ionization analysis techniques; DNA melting point techniques; and titration analysis techniques.

8. The device of claim 7 , wherein the fluid comprises one or more nanoparticles.

9. The device of claim 8 , wherein the one or more nanoparticles are functionalized.

10. A free-surface detection device comprising:

a fluid flow channel having a first end and a second end;

a free-surface interface region located between the first end and the second end, wherein the free-surface interface region is open to atmospheric air comprising nanoparticle colloid;

wherein said fluid flow channel further comprises a temperature control element linked to a controller for controlling the local evaporation rate; and

wherein nanoparticle colloid concentration is controlled within the fluid flow channel due to said controlled local evaporation rate.

11. The device of claim 10 , wherein said nanoparticle colloid aggregates due to controlled nanoparticle concentration.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 23, 2019
From: SANTIAGO, JUAN G.
To: THE BOARD OF TRUSTEES OF THE LELAND STANFORD JUNIOR UNIVERSITY
Reel/Frame 048112/0688 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 23, 2019
From: MEINHART, CARL D.; PIOREK, BRIAN; LEE, SEUNG JOON; MOSKOVITS, MARTIN; BANERJEE, SANJOY
To: THE REGENTS OF THE UNIVERSITY OF CALIFORNIA
Reel/Frame 048112/0762 →
Continuity (7)
Continuation 14814771 · Jul 31, 2015
Continuation 13872778 · Apr 29, 2013
Continuation 13564698 · Aug 1, 2012
Continuation 13217616 · Aug 25, 2011
Division 12597742
Provisional Application 60914603 · Apr 27, 2007
Related Publication 20180024067A1 · Jan 25, 2018