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Room temperature-based hydrogen gas sensing over Laser-Induced Graphene electrode supported Pt nanoparticles for low LODopen access

Authors
Lim, MinseobKim, Jun YoungKang, HyunjiYun, Tae WoongCho, Hong-BaekChoa, Yong-Ho
Issue Date
Dec-2024
Publisher
Elsevier B.V.
Keywords
Chemiresistive sensor; Gas sensor; Graphene oxide; Hydrogen detection
Citation
Sensors and Actuators Reports, v.8, pp 1 - 7
Pages
7
Indexed
SCOPUS
ESCI
Journal Title
Sensors and Actuators Reports
Volume
8
Start Page
1
End Page
7
URI
https://scholarworks.bwise.kr/erica/handle/2021.sw.erica/120732
DOI
10.1016/j.snr.2024.100247
ISSN
2666-0539
Abstract
This study introduces a novel hydrogen sensor that operates efficiently at room temperature with high sensitivity and selectivity. This sensor was created by utilizing a platinum on laser-induced graphene (Pt/LIG) structure. The synthesis process involves the creation of highly crystalline graphene with a large surface area, which serves as an optimal support for nanosized pt catalysts. Post-synthesized Pt nanoparticles were dispersed on the surface of the LIG electrode and envisaged for the hydrogen gas sensing property under ambient conditions without a heating or sensor device. Analysis showed that the Pt nanoparticles are uniquely characterized by their narrow size distribution of less than 5 nm and their homogeneous deposition on the LIG substrate, which itself exhibits a substantial specific surface area of 187.4 m²/g. This configuration enables the sensor to achieve a very low limit for detection of hydrogen to 200 ppb. Moreover, the sensor demonstrates exceptional performance attributes, including high sensitivity, excellent linearity, and remarkable cycle stability over 50 cycles. The synergy between the high surface area of the LIG and the catalytic activity of the Pt nanoparticles facilitates the detection of hydrogen at room temperature. This study contributes significantly to the field of gas sensing technology, particularly in applications requiring accurate and reliable hydrogen detection at ambient conditions. © 2024
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