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An integrated self-healable and robust conductive hydrogel for dynamically self-adhesive and highly conformable electronic skin

机译:一种综合自我康复和强大的导电水凝胶,用于动态自粘和高度适形的电子皮肤

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摘要

Mimicking the mechanical and sensory properties of human skin to develop a highly conformable electronic skin integrated with robust, self-healable, and ultra-sensitive properties is promising but still a great challenge. In this work, we report a novel dynamic self-adhesive and self-healable conductive hydrogel material that is applicable to highly conformal and ultrasensitive electronic skin devices. In the obtained gel system, the incorporated tannic acid coated cellulose nanocrystals (TA@CNCs) act as dynamic reinforcing bridges in the dual cross-linked gel network that are mediated by reversible hydrogen bonds and electrostatic interactions, allowing a unique combination of superior mechanical performance (strain >700%) and reliable autonomous self-healing capability (HE >90%). The formation of conductive polyaniline (PANI) network in the obtained TC-Gel leads to both high conductivity (0.13 S cm(-1)) and high sensitivity (GF = 11.2), which are advantageous for the real-time detection of large human motions, tiny muscle movements, and physiological signals. Notably, the TC-Gel exhibits the dynamic self-adhesive performance that integrates both strong adhesion (similar to 440 N m(-1)) and easy detachment in water for 3 min. As a proof of concept, we demonstrate that this unique self-adhesive strategy is able to increase interface interlocking and conformal contact between the TC-Gel based sensor and dynamic biological surface, contributing to the high sensory performance with a low noise level and negligible baseline fluctuation. We envisage that this work broadens the avenue for designing multifunctional cellulosic-based hydrogels to promote the application of integrated electronic skin with high sensory properties and comfortable user experiences.
机译:模仿人体皮肤的机械和感觉性能,开发具有坚固,自我愈合和超敏感的高度适系的电子皮肤,而超敏感性是有前途的,但仍然是一个巨大的挑战。在这项工作中,我们报告了一种新型动态自粘和自我恢复的导电水凝胶材料,适用于高度保形和超敏的电子皮肤装置。在所获得的凝胶系统中,掺入的单宁酸涂覆的纤维素纳米晶体(TA @ CNC)作为由可逆氢键和静电相互作用介导的双交联凝胶网络中的动态增强桥,允许具有优异的机械性能的独特组合(菌株> 700%)和可靠的自主自愈能力(他> 90%)。所获得的TC-凝胶中的导电聚苯胺(PANI)网络的形成导致高导电率(0.13秒(-1))和高灵敏度(GF = 11.2),这对于大型人的实时检测是有利的运动,微小的肌肉运动和生理信号。值得注意的是,TC-GEL表现出直流的自粘性能,其整合强粘附(类似于440 n m(-1)),并且在水中容易地脱离3分钟。作为概念的证据,我们证明这种独特的自粘策略能够在基于TC-凝胶的传感器和动态生物表面之间增加界面互锁和共形接触,有助于具有低噪声水平的高感官性能和可忽略的基线波动。我们设想,这项工作拓宽了设计多功能纤维素的水凝胶的途径,以促进集成的电子皮肤,具有高感官特性和舒适的用户体验。

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