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Mimosa Origami: A nanostructure-enabled directional self-organizationregime of materials

机译:含羞草折纸:启用纳米结构的定向自组织材料制度

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摘要

One of the innate fundamentals of living systems is their ability to respond toward distinct stimuli by various self-organization behaviors. Despite extensive progress, the engineering of spontaneous motion in man-made inorganic materials still lacks the directionality and scale observed in nature. We report the directional self-organization of soft materials into three-dimensional geometries by the rapid propagation of a folding stimulus along a predetermined path. We engineer a unique Janus bilayer architecture with superior chemical and mechanical properties that enables the efficient transformation of surface energy into directional kinetic and elastic energies. This Janus bilayer can respond to pinpoint water stimuli by a rapid, several-centimeters-long self-assembly that is reminiscent of the Mimosa pudica’s leaflet folding. The Janus bilayers also shuttle water at flow rates up to two orders of magnitude higher than traditional wicking-based devices, reaching velocities of 8 cm/s and flow rates of 4.7 μl/s. This self-organization regime enables the ease of fabricating curved, bent, and split flexible channels with lengths greater than 10 cm, demonstrating immense potential for microfluidics, biosensors, and water purification applications.
机译:生命系统的天生基础之一是它们通过各种自组织行为对独特刺激做出反应的能力。尽管取得了长足的进步,但人造无机材料中的自发运动工程仍然缺乏自然界中观察到的方向性和尺度。我们报告了折叠材料沿预定路径的快速传播,将柔软材料的定向自组织化为三维几何形状。我们设计了具有卓越的化学和机械性能的独特Janus双层体系结构,能够将表面能有效转化为定向动能和弹性能。这种Janus双层材料可以通过数厘米长的快速自组装来响应精确的水刺激,这让人联想到含羞草(Mimosa pudica)小叶的折叠。 Janus双层还以比传统的基于芯吸的装置高两个数量级的流速输送水,达到8 cm / s的速度和4.7μl/ s的流速。这种自组织机制使制造长度大于10 cm的弯曲,弯曲和分裂的柔性通道变得容易,从而证明了微流体,生物传感器和水净化应用的巨大潜力。

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