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首页> 外文期刊>Carbon: An International Journal Sponsored by the American Carbon Society >Bio-inspired multiple-stimuli responsive porous materials with switchable flexibility and programmable shape morphing capability
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Bio-inspired multiple-stimuli responsive porous materials with switchable flexibility and programmable shape morphing capability

机译:生物启发多刺激响应性多孔材料,可切换柔韧性和可编程形状变形能力

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Inspired by desert resurrection plant, Rose of Jericho, this study developed a new porous material with programmable multiple-stimuli responsive features. The first one is reversible shape-memory transformation of experiencing extremely large deformations upon dehydration and rehydration; superior to the plant, the aerogels display controllable responsiveness based on moisture amount with fast actuation. The second one is switchable flexibility depending on the polarity of exposed fluids; these aerogels are reversibly compressible with outstanding flexibility in polar solvents but sustain incompressibility with high stiffness in nonpolar solvents. The third one is programmable shape morphing capability driven by imbibition of liquid droplet; mimicking the movement of the plant but in different mechanisms, the aerogels can evolve into programmed V-shape or U-shape by simply controlling the liquid imbibition location. These multiple-stimuli responsive features arise from the unique ensemble of the porous morphology, and the interactions between solvent molecules and the chemical structures of the porous material engineered by two-step crosslinking mechanism. It can be foreseen that the synergistic effect of the intriguing features could allow for the applications of the aerogels as smart sensors/actuators, soft robotics, and biomedical devices, all of which typically require smart adaptability to external stimuli and/or extreme environments. (C) 2020 Elsevier Ltd. All rights reserved.
机译:这项研究启发了由沙漠复活植物,杰里科的玫瑰,开发了一种具有可编程多刺激反应特征的新多孔材料。第一个是在脱水和再水合时经历极大变形的可逆形状记忆变换;优于工厂,气凝胶基于水分量显示可控的响应性,伴随快速致动。第二种是可切换的灵活性,这取决于暴露的流体的极性;这些气凝胶可逆地可压缩,具有极性溶剂的突出灵活性,但在非极性溶剂中持续高刚度的不可压缩性。第三种是通过吸收液滴驱动的可编程形状变形能力;模仿植物的运动,但在不同的机制中,通过简单地控制液体吸收位置,气动凝胶可以通过简单地扩进成编程的V形或U形。这些多刺激响应特征来自多孔形态的独特集合,以及溶剂分子与通过两步交联机构工程的多孔材料的化学结构之间的相互作用。可以预见的是,有趣特征的协同效应可以允许气凝胶的应用作为智能传感器/致动器,软机器人和生物医学装置,所有这些都是需要对外部刺激和/或极端环境的智能适应性。 (c)2020 elestvier有限公司保留所有权利。

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