Li Xiaobin, He Lingzhang, Li Yanfei, Chao Mingyuan, Li Mingkun, Wan Pengbo, Zhang Liqun
Interdisciplinary Research Center for Artificial Intelligence, College of Materials Science and Engineering, State Key Laboratory of Organic-Inorganic Composites, Beijing University of Chemical Technology, Beijing 100029, China.
Shanghai Key Laboratory of Molecular Imaging, Shanghai University of Medicine and Health Sciences, Shanghai 201318, China.
ACS Nano. 2021 Apr 27;15(4):7765-7773. doi: 10.1021/acsnano.1c01751. Epub 2021 Mar 26.
Conductive hydrogels have emerged as promising material candidates for epidermal sensors due to their similarity to biological tissues, good wearability, and high accuracy of information acquisition. However, it is difficult to simultaneously achieve conductive hydrogel-based epidermal sensors with reliable healability for long-term usage, robust mechanical property, environmental degradability for decreased electronic waste, and sensing capability of the physiological stimuli and the electrophysiological signals. Herein, we propose the synthesis strategy of a multifunctional epidermal sensor based on the highly stretchable, self-healing, degradable, and biocompatible nanocomposite hydrogel, which is fabricated from the conformal coating of a MXene (TiCT) network by the hydrogel polymer networks involving poly(acrylic acid) and amorphous calcium carbonate. The epidermal sensor can be employed to sensitively detect human motions with the fast response time (20 ms) and to serve as electronic skins for wirelessly monitoring the electrophysiological signals (such as the electromyogram and electrocardiogram signals). Meanwhile, the multifunctional epidermal sensor could be degraded in phosphate buffered saline solution, which could not cause any pollution to the environment. This line of research work sheds light on the fabrication of the healable, degradable, and electrophysiological signal-sensitive conductive hydrogel-based epidermal sensors with potential applications in human-machine interactions, healthy diagnosis, and smart robot prosthesis devices.
由于与生物组织相似、良好的可穿戴性以及信息采集的高精度,导电水凝胶已成为表皮传感器有前景的材料候选者。然而,要同时实现基于导电水凝胶的表皮传感器,使其具有长期使用的可靠自愈性、强大的机械性能、减少电子废物的环境可降解性以及对生理刺激和电生理信号的传感能力是很困难的。在此,我们提出了一种基于高度可拉伸、自愈、可降解且生物相容的纳米复合水凝胶的多功能表皮传感器的合成策略,该水凝胶由包含聚丙烯酸和无定形碳酸钙的水凝胶聚合物网络对MXene(TiCT)网络进行保形涂层制备而成。该表皮传感器可用于以快速响应时间(20毫秒)灵敏地检测人体运动,并用作电子皮肤以无线监测电生理信号(如肌电图和心电图信号)。同时,该多功能表皮传感器可在磷酸盐缓冲盐溶液中降解,不会对环境造成任何污染。这一系列研究工作为可自愈、可降解且对电生理信号敏感的基于导电水凝胶的表皮传感器的制造提供了思路,这些传感器在人机交互、健康诊断和智能机器人假肢装置中具有潜在应用。