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首页> 外文期刊>ACS nano >Protein-Inspired Self-Healable Ti3C2 MXenes/Rubber-Based Supramolecular Elastomer for Intelligent Sensing
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Protein-Inspired Self-Healable Ti3C2 MXenes/Rubber-Based Supramolecular Elastomer for Intelligent Sensing

机译:用于智能感应的蛋白质启发自我恢复的Ti3C2 mxenes /橡胶基超分子弹性体

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摘要

Progress toward the integration of electronic sensors with a signal processing system is important for artificial intelligent and smart robotics. It demands mechanically robust, highly sensitive, and self-healable sensing materials which could generate discernible electric variations responding to external stimuli. Here, inspired by the supramolecular interactions of amino acid residues in proteins, we report a self-healable nanostructured Ti(3)C(2)MXenes/rubber-based supramolecular elastomer (NMSE) for intelligent sensing. MXene nanoflakes modified with serine through an esterification reaction assemble with an elastomer matrix, constructing delicate dynamic supramolecular hydrogen bonding interfaces. NMSE features desirable recovered toughness (12.34 MJ/m(3)) and excellent self-healing performance (similar to 100%) at room temperature. The NMSE-based sensor with high gauge factor (107.43), low strain detection limit (0.190, and fast responding time (50 ms) can precisely detect subtle human motions (including speech, facial expression, pulse, and heartbeat) and moisture variations even after cut/healing processes. Moreover, NMSE-based sensors integrated with a complete signal process system show great feasibility for speech-controlled motions, which demonstrates promising potential in future wearable electronics and soft intelligent robotics.
机译:用信号处理系统集成电子传感器的进展对于人工智能和智能机器人来说是重要的。它要求机械稳健,高敏感和自我恢复的传感材料,这可能产生响应外部刺激的可辨别电气变化。这里,受蛋白质中氨基酸残基的超分子相互作用的启发,我们报告了一种用于智能感测的自我恢复的纳米结构Ti(3)C(2)Mxenes /橡胶基超分子弹性体(NMSE)。通过用弹性体基质组装通过酯化反应组装丝氨酸,构建精细动态超分子氢键织物。 NMSE具有所需的回收韧性(12.34mJ / m(3)),室温下具有优异的自愈性能(类似于100%)。基于NMSE的传感器具有高规计因子(107.43),低应变检测限(0.190,快速响应时间(50毫秒)可以精确地检测微妙的人类运动(包括语音,面部表情,脉搏和心跳)和甚至水分变化切割/愈合过程后。此外,基于NMSE的传感器与完整的信号过程系统集成,对语音控制的运动表示了很大的可行性,这表明了未来可穿戴电子产品和软智能机器人的有希望的潜力。

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