Wearable anti-temperature interference strain sensor with metal nanoparticle thin film and hybrid ligand exchange

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Anti-interference characteristics, whereby undesirable signal interference is minimized, are required for multifunctional sensor platforms. In this study, an anti-temperature-interference resistive-type strain sensor, which does not respond to temperature but only to strain, is designed. Anti-interference properties were achieved by modulating the temperature coefficient of resistance (TCR) of metal nanoparticles (NPs) through hybrid chemical treatment with organic and halide ligands that induce negative and positive TCRs, respectively. Consequently, a very low TCR of 1.9 x 10(-5) K-1 was obtained. To investigate the origin of this near-zero TCR, analyses of correlated electrical, thermal, and mechanical properties were performed in addition to structural characterization and analysis. Density functional theory calculations and electrical percolation modeling were performed to illuminate the transport behavior in the near-zero-TCR NP thin films. Finally, we fabricated a high-performance anti-temperature-interference strain sensor using a solution process. The sensors detect a variety of strains, including those arising from large movements, such as wrist and knee movements, and fine movements, such as artery pulses or movements made during calligraphy, and did not respond to temperature changes.
Publisher
ROYAL SOC CHEMISTRY
Issue Date
2022-06
Language
English
Article Type
Article
Citation

NANOSCALE, v.14, no.24, pp.8628 - 8639

ISSN
2040-3364
DOI
10.1039/d2nr02392j
URI
http://hdl.handle.net/10203/297132
Appears in Collection
PH-Journal Papers(저널논문)
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