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导电三重聚合物网络中可逆和不可逆共价键的平衡共存使可拉伸水凝胶具有高韧性和粘性。

Balanced Coexistence of Reversible and Irreversible Covalent Bonds in a Conductive Triple Polymeric Network Enables Stretchable Hydrogels with High Toughness and Adhesiveness.

作者信息

Park Kyuha, Kang Kyumin, Kim Jungwoo, Kim Sung Dong, Jin Subin, Shin Mikyung, Son Donghee

机构信息

Department of Electrical and Computer Engineering, Sungkyunkwan University (SKKU), Suwon16419, Republic of Korea.

Center for Neuroscience Imaging Research, Institute for Basic Science (IBS), Suwon16419, Republic of Korea.

出版信息

ACS Appl Mater Interfaces. 2022 Dec 21;14(50):56395-56406. doi: 10.1021/acsami.2c17676. Epub 2022 Dec 9.

DOI:10.1021/acsami.2c17676
PMID:36484343
Abstract

The application of soft hydrogels to stretchable devices has attracted increasing attention in deformable bioelectronics owing to their unique characteristic, "modulus matching between materials and organs". Despite considerable progress, their low toughness, low conductivity, and absence of tissue adhesiveness remain substantial challenges associated with unstable skin-interfacing, where body movements undesirably disturb electrical signal acquisitions. Herein, we report a material design of a highly tough strain-dissipative and skin-adhesive conducting hydrogel fabricated through a facile one-step sol-gel transition and its application to an interactive human-machine interface. The hydrogel comprises a triple polymeric network where irreversible amide linkage of polyacrylamide with alginate and dynamic covalent bonds entailing conjugated polymer chains of poly(3,4-ethylenedioxythiophene)-co-(3-thienylboronic acid) are simultaneously capable of high stretchability (1300% strain), efficient strain dissipation (36,209 J/m), low electrical resistance (590 Ω), and even robust skin adhesiveness (35.0 ± 5.6 kPa). Based on such decent characteristics, the hydrogel was utilized as a multifunctional layer for successfully performing either electrophysiological cardiac/muscular on-skin sensors or an interactive stretchable human-machine interface.

摘要

由于具有“材料与器官之间的模量匹配”这一独特特性,软质水凝胶在可拉伸设备中的应用在可变形生物电子学领域引起了越来越多的关注。尽管取得了相当大的进展,但它们的低韧性、低导电性以及缺乏组织粘附性仍然是与不稳定皮肤接口相关的重大挑战,在这种情况下,身体运动可能会对电信号采集产生不良干扰。在此,我们报告了一种通过简便的一步溶胶 - 凝胶转变制备的高韧性应变耗散且皮肤粘附的导电水凝胶的材料设计及其在交互式人机界面中的应用。该水凝胶包含一个三重聚合物网络,其中聚丙烯酰胺与藻酸盐的不可逆酰胺键以及包含聚(3,4 - 乙撑二氧噻吩)- 共 -(3 - 噻吩硼酸)共轭聚合物链的动态共价键同时具备高拉伸性(1300%应变)、高效应变耗散(36209 J/m)、低电阻(590 Ω)以及甚至强大的皮肤粘附性(35.0 ± 5.6 kPa)。基于这些优良特性,该水凝胶被用作多功能层,成功地实现了用于心脏/肌肉的体表电生理传感器或交互式可拉伸人机界面。

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