IP Library Granted Patent US 10,161,818
Granted Patent B2
US 10,161,818 · App. 15/183,259 · Granted Dec 25, 2018

Microelectromechanical gas sensor based on knudsen thermal force

Inventors: Alina Alexeenko (West Lafayette, IN); Andrew Strongrich (Saginaw, MI)
Assignee: PURDUE RESEARCH FOUNDATION
G01L9/00G01N27/226
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Quick Facts
Patent No.
US 10,161,818
App. No.
15/183,259
Granted
Dec 25, 2018
Kind
B2
Abstract

A system operating based on Knudsen thermal force includes a microelectromechanical (MEMS) gas sensor, the MEMS gas sensor includes a substrate. The sensor further includes at least one stationary assembly fixedly coupled to the substrate, the at least one stationary assembly terminating at corresponding pads configured to receive an electrical current for heating the at least one stationary assembly. Additionally, the sensor includes at least one moveable assembly disposed above the substrate and biased to move substantially according to a main axis and juxtaposed with the at least one stationary assembly.

Claims (49)

1. A microelectromechanical (MEMS) gas sensor operating based on Knudsen thermal force, comprising:

a substrate;

at least one stationary assembly fixedly coupled to the substrate, the at least one stationary assembly terminating at corresponding pads configured to receive an electrical current for heating the at least one stationary assembly;

at least one moveable assembly disposed above the substrate and biased to move substantially according to a main axis and juxtaposed with the at least one stationary assembly,

the at least one moveable assembly configured to be selectively moveable along the main axis with respect to the at least one stationary assembly such that pressure applied to the at least one stationary assembly in the heated state and the at least one moveable assembly forms Knudsen forces applied to the at least one moveable assembly causing active movement of the at least one moveable assembly substantially along the main axis;

the at least one stationary assembly comprising

a base portion; and

at least one heating arm extended outward from the base portion;

the at least one moveable assembly comprising

a base portion; and

at least one sensing arm extended from the base portion, the at least one extended sensing arm juxtaposed with a corresponding heating arm;

an actuation mechanism coupled to an actuation end of the at least one moveable assembly and configured to cause the selective movement; and

a sensing mechanism coupled to a sensing end of the at least one moveable assembly opposite the actuation end, the sensing mechanism configured to sense the active movement of the at least one moveable assembly.

2. The MEMS gas sensor of claim 1 ,

the actuation mechanism comprising an actuation capacitor coupled to actuation pads, such that applying a current to the actuation pads results in the selective movement of the moveable assembly due to electrostatic forces; and

the sensing mechanism comprising a sensing capacitor coupled to sensing pads, such that the active movement of the moveable member results in changes in capacitance of the sensing capacitor.

3. A microelectromechanical (MEMS) gas sensor operating based on Knudsen thermal force, comprising:

a substrate;

at least one stationary assembly fixedly coupled to the substrate, the at least one stationary assembly terminating at corresponding pads configured to receive an electrical current for heating the at least one stationary assembly;

at least one moveable assembly disposed above the substrate and biased to move substantially according to a main axis and juxtaposed with the at least one stationary assembly,

the at least one moveable assembly configured to be selectively moveable with respect to the at least one stationary assembly such that at a known pressure applied to the at least one stationary assembly in the heated state and the at least one moveable assembly, movement of the at least one moveable assembly correlated to identity of concentration of known constituents of gases applying the known pressure;

the at least one stationary assembly comprising

a base portion; and

at least one heating arm extended outward from the base portion;

the at least one moveable assembly comprising

a base portion; and

at least one sensing arm extended from the base portion, the at least one extended sensing arm juxtaposed with a corresponding heating arm;

an actuation mechanism coupled to an actuation end of the at least one moveable assembly and configured to cause the selective movement; and

a sensing mechanism coupled to a sensing end of the at least one moveable assembly opposite the actuation end, the sensing mechanism configured to sense the active movement of the at least one moveable assembly.

4. The MEMS gas sensor of claim 3 ,

the actuation mechanism comprising an actuation capacitor coupled to actuation pads, such that applying a current to the actuation pads results in the selective movement of the moveable assembly due to electrostatic forces; and

the sensing mechanism comprising a sensing capacitor coupled to sensing pads, such that the active movement of the moveable member results in changes in capacitance of the sensing capacitor.

5. A system operating based on Knudsen thermal force, comprising:

a microelectromechanical (MEMS) gas sensor, comprising

a substrate,

at least one stationary assembly fixedly coupled to the substrate, the at least one stationary assembly terminating at corresponding pads configured to receive an electrical current for heating the at least one stationary assembly,

at least one moveable assembly disposed above the substrate and biased to move substantially according to a main axis and juxtaposed with the at least one stationary assembly,

the at least one moveable assembly configured to be selectively moveable along the main axis with respect to the at least one stationary assembly such that pressure applied to the at least one stationary assembly in the heated state and the at least one moveable assembly forms Knudsen forces applied to the at least one moveable assembly causing active movement of the at least one moveable assembly substantially along the main axis;

an actuation mechanism coupled to an actuation end of the at least one moveable assembly and configured to cause the selective movement; and

a sensing mechanism coupled to a sensing end of the at least one moveable assembly opposite the actuation end, the sensing mechanism configured to sense the active movement of the at least one moveable assembly.

6. The system of claim 5 , the at least one stationary assembly comprising

a base portion; and

at least one heating arm extended outward from the base portion.

7. The system of claim 6 , the at least one moveable assembly comprising

a base portion; and

at least one sensing arm extended from the base portion, the at least one extended sensing arm juxtaposed with a corresponding heating arm.

8. The system of claim 5 ,

the actuation mechanism comprising an actuation capacitor coupled to actuation pads, such that applying a current to the actuation pads results in the selective movement of the moveable assembly due to electrostatic forces; and

the sensing mechanism comprising a sensing capacitor coupled to sensing pads, such that the active movement of the moveable member results in changes in capacitance of the sensing capacitor.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 19, 2018
From: ALEXEENKO, ALINA; STRONGRICH, ANDREW
To: PURDUE RESEARCH FOUNDATION
Reel/Frame 047536/0472 →
CONFIRMATORY LICENSE Recorded May 31, 2017
From: PURDUE UNIVERSITY
To: NATIONAL SCIENCE FOUNDATION
Reel/Frame 042642/0626 →
Continuity (2)
Provisional Application 62180047 · Jun 15, 2015
Related Publication 20160363553A1 · Dec 15, 2016