Hydrogen-bonded network enables polyelectrolyte complex hydrogels with high stretchability, excellent fatigue resistance and self-healability for human motion detection
Тип публикации: Journal Article
Дата публикации: 2021-07-01
scimago Q1
wos Q1
БС1
SJR: 2.961
CiteScore: 25.6
Impact factor: 14.2
ISSN: 13598368
Ceramics and Composites
Mechanical Engineering
Industrial and Manufacturing Engineering
Mechanics of Materials
Краткое описание
Polyelectrolyte complex hydrogel (PECH) is an emerging ion conductive hydrogel made from non-covalent interacted oppositely charged polyelectrolytes in water. However, the construction of PECH with high stretchability, excellent fatigue resistance and self-healability is heavily demanded while remaining a profound challenge. Herein, a hydrogen-bonded network densification strategy is presented for preparing a highly stretchable and deformation-tolerant PECH hydrogel (Fe/CS/PAA), which is composed of an anionic Fe 3+ -coordinated polyacrylic acid network (Fe-PAA) and cationic Fe 3+ -coordinated chitosan network (Fe-CS). Benefiting from the formation of dense hydrogen-bonded network between the Fe-PAA and Fe-CS networks activated by salt impregnation, the resultant densified hydrogen-bonded Fe/CS/PAA hydrogel (DHB-Fe/CS/PAA) exhibits large tensile strength (~0.34 MPa), high stretchability (~1370%), low-temperature resistance to −25 °C, and heat-accelerated self-healability. Due to its high stretchability, excellent fatigue resistance and high ionic conductivity, the DHB-Fe/CS/PAA can readily work as a stretchable ionic conductor for skin-inspired ionic strain sensor, displaying high sensitivity in a wide strain range (0.5%–500%), fast response time (<180 ms) and excellent durability for 500 cycles at a 100% strain. Besides, the as-assembled ionic sensor is capable of maintaining high ionic conductivity and mechanical robustness at a sub-zero temperature of −25 °C ascribing to the presence of high-concentration charged functional groups and impregnated salts. As a demonstration, a wearable DHB-Fe/CS/PAA ionic sensor in a resistive mode is assembled, demonstrating high sensitivity, wide response range and excellent cyclability in detecting and distinguishing complex human motions rapidly and in real-time.
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Song H. et al. Hydrogen-bonded network enables polyelectrolyte complex hydrogels with high stretchability, excellent fatigue resistance and self-healability for human motion detection // Composites Part B: Engineering. 2021. Vol. 217. p. 108901.
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Song H., Sun Y., Zhu J., Xu J., Zhang C., Liu T. Hydrogen-bonded network enables polyelectrolyte complex hydrogels with high stretchability, excellent fatigue resistance and self-healability for human motion detection // Composites Part B: Engineering. 2021. Vol. 217. p. 108901.
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TY - JOUR
DO - 10.1016/j.compositesb.2021.108901
UR - https://doi.org/10.1016/j.compositesb.2021.108901
TI - Hydrogen-bonded network enables polyelectrolyte complex hydrogels with high stretchability, excellent fatigue resistance and self-healability for human motion detection
T2 - Composites Part B: Engineering
AU - Song, Hui
AU - Sun, Yinglun
AU - Zhu, Jixin
AU - Xu, Jing-San
AU - Zhang, Chao
AU - Liu, Tianxi
PY - 2021
DA - 2021/07/01
PB - Elsevier
SP - 108901
VL - 217
SN - 1359-8368
ER -
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@article{2021_Song,
author = {Hui Song and Yinglun Sun and Jixin Zhu and Jing-San Xu and Chao Zhang and Tianxi Liu},
title = {Hydrogen-bonded network enables polyelectrolyte complex hydrogels with high stretchability, excellent fatigue resistance and self-healability for human motion detection},
journal = {Composites Part B: Engineering},
year = {2021},
volume = {217},
publisher = {Elsevier},
month = {jul},
url = {https://doi.org/10.1016/j.compositesb.2021.108901},
pages = {108901},
doi = {10.1016/j.compositesb.2021.108901}
}