IP Library › Granted Patent US 12,601,678
Granted Patent B2
US 12,601,678 · App. 18/266,504 · Granted Apr 14, 2026

Complex gas sensor, method for manufacturing same, and method for controlling complex gas sensor

Inventors: Yong-Ho Choa (Seongnam-si, KR); Han Kim (Seoul, KR); Byungkwon Jang (Pyeongtaek-si, KR); Ji Young Park (Ansan-si, KR); Min Seob Lim (Seoul, KR)
Assignee: INDUSTRY-UNIVERSITY COOPERATION FOUNDATION HANYANG UNIVERSITY ERICA
G01N21/33G01N33/0027
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Quick Facts
Patent No.
US 12,601,678
App. No.
18/266,504
Granted
Apr 14, 2026
Kind
B2
Abstract

The present disclosure relates to a gas sensor using photo-active energy and capacitance, and provides a complex gas sensor including a light source configured to irradiate light, and a gas detection part in which adsorption of a target gas is promoted by the light and whose capacitance changes according to the adsorption of the target gas.

Claims (57)

1 . A complex gas sensor comprising:

a light source configured to irradiate light; and

a gas detection part in which adsorption of a target gas is promoted by the light and whose capacitance changes according to the adsorption of the target gas,

wherein the gas detection part comprises a photo-active part comprising quantum dot that absorbs energy of the light and promotes polarization in a sensing part.

2 . The complex gas sensor of claim 1 , wherein the gas detection part includes:

a top electrode surrounding the sensitive part;

a bottom electrode facing the top electrode; and

a porous structure disposed between the top electrode and the bottom electrode.

3 . The complex gas sensor of claim 2 , wherein in the gas detection part, a frequency of a voltage applied to the top electrode and the bottom electrode is differently controlled according to a type of the target gas.

4 . The complex gas sensor of claim 3 , wherein the target gas includes any one of methanol gas, toluene gas, and acetone gas, and

any one of the methanol gas, the toluene gas, and the acetone gas is selectively sensed according to the frequency of the voltage applied to the top electrode and the bottom electrode.

5 . The complex gas sensor of claim 3 , further comprising a control part configured to control a frequency of a voltage applied to the gas detection part to be greater than 800 Hz and less than 3,000 Hz, and sense toluene gas based on a change in capacitance of the gas detection part.

6 . The complex gas sensor of claim 3 , further comprising a control part configured to control a frequency of a voltage applied to the gas detection part to be 300 Hz or more and 800 Hz or less, and sense acetone gas based on a change in capacitance of the gas detection part.

7 . The complex gas sensor of claim 3 , further comprising a control part configured to control a frequency of a voltage applied to the gas detection part to be 10 KHz or more and 1 MHz or less, and sense methanol gas based on a change in capacitance of the gas detection part.

8 . The complex gas sensor of claim 2 , wherein the porous structure includes any one of anodic aluminum oxide (AAO), silicon oxide (SiO 2 ), polyimide (PI), polyethylene terephthalate (PET), polyethylene naphthalate (PEN), and polytetrafluoroethylene (PTFE).

9 . The complex gas sensor of claim 1 , wherein in the sensing part, a polarization phenomenon occurs by light energy irradiated from the light source, and the adsorption of the target gas is promoted by the polarization phenomenon.

10 . The complex gas sensor of claim 1 , wherein the functional groups further comprises a carboxyl group (—COOH).

11 . The complex gas sensor of claim 1 , wherein the sensing part further comprises any one of carbon nanotube (CNT), amorphous carbon, active carbon, and biochar as the sensitive material.

12 . The complex gas sensor of claim 1 , wherein the light source emits light in a wavelength of an ultraviolet region, and

in the sensing part, a polarization phenomenon occurs by absorbing the light in the wavelength of an ultraviolet region, and the adsorption of the target gas is promoted according to the polarization phenomenon.

13 . A method of controlling the complex gas sensor of claim 1 , the method comprising:

irradiating light to the gas detection part by controlling the light source;

applying a voltage having a detection frequency to the gas detection part;

detecting the change in capacitance of the gas detection part; and

sensing the target gas based on a change in capacitance.

14 . The method of claim 13 , wherein the applying of the voltage having the detection frequency to the gas detection part further includes determining the detection frequency according to a type of the target gas to be detected.

15 . The method of claim 13 , wherein the sensing of the target gas further includes sensing the target gas when the change in capacitance exceeds a preset reference.

16 . A method of manufacturing a complex gas sensor, the method comprising:

preparing a porous structure;

forming a top electrode on an upper surface of the porous structure such that one region of the upper surface of the porous structure is exposed;

forming a bottom electrode on a lower surface of the porous structure;

forming a sensitive part configure to adsorb and desorb a target gas in the exposed region of the upper surface of the porous structure; and

providing a light source configured to irradiate light to at least a portion of the sensitive part,

wherein the forming of the sensitive part includes:

preparing a sensitive material in which the adsorption of the target gas is promoted by light energy irradiated from the light source;

preparing a source solution by mixing a solvent with the sensitive material; and

providing the source solution to the exposed region of the upper surface of the porous structure while the porous structure is heat-treated.

17 . A complex gas sensor comprising:

a light source configured to irradiate light; and

a gas detection part of which capacitance changes according to adsorption of a target gas,

wherein the gas detection part includes:

a sensitive composite including a sensing part configured to adsorb the target gas and a photo-active part configured to promote the adsorption of the target gas of the sensing part by light energy supplied from the light source;

a top electrode surrounding the sensitive composite;

a bottom electrode facing the top electrode; and

a porous structure disposed between the top electrode and the bottom electrode,

wherein the photo-active part comprises quantum dot that absorbs the light energy and promotes polarization in the sensing part.

18 . A method of manufacturing the complex gas sensor of claim 17 , the method comprising:

preparing a porous structure;

forming a top electrode on an upper surface of the porous structure such that one region of the upper surface of the porous structure is exposed;

forming a bottom electrode on a lower surface of the porous structure;

forming, in the exposed region of the upper surface of the porous structure, a sensitive composite including a sensing part configured to adsorb and desorb a target gas and a photo-active part configured to promote the adsorption of the target gas; and

providing a light source configured to irradiate light to at least a portion of the sensitive composite.

19 . A method of controlling the complex gas sensor of claim 17 , the method comprising:

irradiating light to the gas detection part by controlling the light source;

applying a voltage having a detection frequency to the gas detection part;

detecting a change in capacitance of the gas detection part; and

sensing the target gas based on a change in capacitance.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 9, 2023
From: CHOA, YONG-HO; KIM, HAN; JANG, BYUNGKWON; PARK, JI YOUNG; LIM, MIN SEOB
To: INDUSTRY-UNIVERSITY COOPERATION FOUNDATION HANYANG UNIVERSITY ERICA CAMPUS
Reel/Frame 063912/0911 →
Priority Claims (3)
KR 10-2022-0016626 · Feb 9, 2022 · national
KR 10-2022-0052559 · Apr 28, 2022 · national
KR 10-2022-0052560 · Apr 28, 2022 · national
Continuity (1)
Related Publication 20240361235A1 · Oct 31, 2024
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