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PdO-Nanoparticle-Embedded Carbon Nanotube Yarns for Wearable Hydrogen Gas Sensing Platforms with Fast and Sensitive Responses

Title
PdO-Nanoparticle-Embedded Carbon Nanotube Yarns for Wearable Hydrogen Gas Sensing Platforms with Fast and Sensitive Responses
Author(s)
Son, WonkyeongLee, Duck WeonKim, Young KwangChun, SungwooLee, Jae MyeongChoi, Jin HyeongShim, Woo SubSuh, DongseokLim, Sang KyooChoi, Changsoon
Issued Date
2023-01
Citation
ACS Sensors, v.8, no.1, pp.94 - 102
Type
Article
Author Keywords
palladium oxidereductionhydrogen gas sensing platformbiscrolling technologyspinnable carbon nanotube
Keywords
THIN-FILMSSENSORNANOWIRESSUBSTRATEAIR
ISSN
2379-3694
Abstract
Hydrogen (H2) gas has recently become a crucial energy source and an imperative energy vector, emerging as a powerful next-generation solution for fuel cells and biomedical, transportation, and household applications. With increasing interest in H2, safety concerns regarding personal injuries from its flammability and explosion at high concentrations (>4%) have inspired the development of wearable pre-emptive gas monitoring platforms that can operate on curved and jointed parts of the human body. In this study, a yarn-type hydrogen gas sensing platform (HGSP) was developed by biscrolling of palladium oxide nanoparticles (PdO NPs) and spinnable carbon nanotube (CNT) buckypapers. Because of the high loading of H2-active PdO NPs (up to 97.7 wt %), when exposed to a flammable H2 concentration (4 vol %), the biscrolled HGSP yarn exhibits a short response time of 2 s, with a high sensitivity of 1198% (defined as Delta G/G0 x 100%). Interestingly, during the reduction of PdO to Pd by H2 gas, the HGSP yarn experienced a decrease in diameter and corresponding volume contraction. These excellent sensing performances suggest that the fabricated HGSP yarn could be applied to a wearable gas monitoring platform for real-time detection of H2 gas leakage even over the bends of joints. © 2023 American Chemical Society
URI
http://hdl.handle.net/20.500.11750/17497
DOI
10.1021/acssensors.2c01743
Publisher
AMER CHEMICAL SOC
Related Researcher
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Division of Energy Technology 1. Journal Articles

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