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Cited 5 time in webofscience Cited 5 time in scopus
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A highly conductive, robust, self-healable, and thermally responsive liquid metal-based hydrogel for reversible electrical switches

Authors
Lee, Joo HyungHyun, Ji EunKim, JongbeomYang, JunginZhang, HuananAhn, HyunchulLee, SoheeKim, Jung HanLim, Taehwan
Issue Date
May-2024
Publisher
Royal Society of Chemistry
Citation
Journal of Materials Chemistry B, v.12, no.21, pp 5238 - 5247
Pages
10
Indexed
SCIE
SCOPUS
Journal Title
Journal of Materials Chemistry B
Volume
12
Number
21
Start Page
5238
End Page
5247
URI
https://scholarworks.gnu.ac.kr/handle/sw.gnu/70601
DOI
10.1039/d4tb00209a
ISSN
2050-750X
2050-7518
Abstract
This study introduces a thermally responsive smart hydrogel with enhanced electrical properties achieved through volume switching. This advancement was realized by incorporating multiscale liquid metal particles (LMPs) into the PNIPAM hydrogel during polymerization, using their inherent elasticity and conductivity when deswelled. Unlike traditional conductive additives, LMPs endow the PNIPAM hydrogel with a remarkably consistent volume switching ratio, significantly enhancing electrical switching. This is attributed to the minimal nucleation effect of LMPs during polymerization and their liquid-like behavior, like vacancies in the polymeric hydrogel under compression. The PNIPAM/LMP hydrogel exhibits the highest electrical switching, with an unprecedented switch of 6.1 orders of magnitude. Even after repeated swelling/deswelling cycles that merge some LMPs and increase the conductivity when swelled, the hydrogel consistently maintains an electrical switch exceeding 4.5 orders of magnitude, which is still the highest record to date. Comprehensive measurements reveal that the hydrogel possesses robust mechanical properties, a tissue-like compression modulus, biocompatibility, and self-healing capabilities. These features make the PNIPAM/LMP hydrogel an ideal candidate for long-term implantable bioelectronics, offering a solution to the mechanical mismatch with dynamic human tissues. A PNIPAM/LMPs hydrogel exhibits the highest electrical switching, with an unprecedented switch of 6.1 orders of magnitude. The hydrogel also possesses robust mechanical properties, a tissue-like compression modulus and self-healing capabilities.
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자연과학대학 (의류학과)
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