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Rapid Recovery Hydrogel Actuators in Air with Bionic Large-Ranged Gradient Structure

机译:快速恢复水凝胶执行器在空气中,具有仿生大规模梯度结构

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Fast recovery in a nonaqueous environment is a big challenge for hydrogel actuators. In this work, a temperature-responsive hydrogel actuator with outstandingly rapid recovery in air was reported. The hydrogel with bionic large-ranged gradient structure was fabricated by copolymerization of hydrophilic monomer hydroxyethyl acrylate (HEA) and N-isopropylacrylamide in the dispersion of Laponite utilizing a facile electrophoretic method. The deformation degree and time can be regulated by varying the concentration of HEA to change the lower critical solution temperature (LCST) and swelling of the hydrogel. A dynamic equilibrium between the water into and out of the hydrogel was observed, and the hydrogel showed no shrink above LCST. The synthesized hydrogels showed fast response in hot water and rapid recovery in air. Such nonshrink characteristics and excellent reversibility made it possible for these hydrogels to be used as temperature-controlled microfluidic switches. This work provided an approach to design fast recovery hydrogel actuators by the incorporation of hydrophilic monomers and extend the application of the hydrogel actuators into fields such as soft robots, micromanipulation, microfluidics and artificial muscles in various environments.
机译:在非水环境中快速恢复是水凝胶执行器的一个很大的挑战。在这项工作中,报道了一种温度响应的水凝胶致动器,其在空气中具有突出的快速恢复。通过在利用容易电泳方法的分散中,通过亲水性单体羟乙基丙烯酸酯(HEA)和N-异丙基丙烯酰胺的共聚合制备具有仿生大型梯度结构的水凝胶。通过改变HEA的浓度来改变水凝胶的较低临界溶液温度(LCST)和溶胀来调节变形程度和时间。观察到水进出水凝胶之间的动态平衡,水凝胶在LCST上方没有收缩。合成的水凝胶在热水中显示出快速的反应,并在空气中快速恢复。这种非研入特性和优异的可逆性使得这些水凝胶成为可用作温度控制的微流体开关。这项工作提供了一种通过掺入亲水性单体来设计快速恢复水凝胶致动器的方法,并将水凝胶致动器延伸到各种环境中的软机器人,微操纵,微流体和人工肌肉等领域的应用。

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