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首页> 外文期刊>Current opinion in solid state & materials science >Hydrogel-actuated integrated responsive systems (HAIRS): Moving towards adaptive materials
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Hydrogel-actuated integrated responsive systems (HAIRS): Moving towards adaptive materials

机译:水凝胶驱动的集成响应系统(HAIRS):转向适应性材料

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The move toward sustainability and efficiency in nearly every field calls for dynamic materials that can harvest energy from and adapt to a changing environment. Here we review our recently developed, widely applicable strategy for adaptive surface design that integrates two rarely associated categories of materials-nanostructured surfaces and hydrogels-into a hybrid architecture. The nanostructure arrays provide unique topographic patterns that confer wetting, optical, and many other functions but on their own are generally static; by embedding them in a layer of responsive hydrogel, we channel the mechanical forces generated within the swelling/contracting gel to reversibly reconfigure the nanostructures in response to stimuli. Since the sensing and responding components are structurally distinct, they can each be programmed independently to match potentially almost any type of environmental change with almost any type of output. Several of our recent advances in nanofabrication make it possible to choose from an entire spectrum of nanostructured materials, stiffnesses, shapes, symmetries, orientations, and large-scale surface gradients, enabling a given stimulus to be translated into a vast assortment of complex multiscale patterns and adaptive responses. The gel chemistry and nanostructure flexibility can be further optimized for incorporating the surfaces into a variety of structures and environments. We envision using this platform to create a generation of sustainable, self-adapting, and self-reporting materials.
机译:几乎每个领域都朝着可持续性和效率的方向发展,要求动态材料能够从不断变化的环境中获取能量并适应不断变化的环境。在这里,我们回顾了我们最近开发的,广泛适用的自适应表面设计策略,该策略将两种很少关联的材料类别(纳米结构化表面和水凝胶)集成到混合结构中。纳米结构阵列提供独特的地形图样,赋予其润湿,光学和许多其他功能,但它们本身通常是静态的。通过将它们嵌入响应水凝胶层中,我们可以传导在溶胀/收缩凝胶中产生的机械力,从而响应刺激而可逆地重新配置纳米结构。由于传感和响应组件在结构上是不同的,因此它们每个都可以独立编程以匹配几乎任何类型的环境变化和几乎任何类型的输出。我们在纳米加工方面的最新进展使我们有可能从纳米结构材料的整个范围,刚度,形状,对称性,取向和大规模表面梯度中进行选择,从而使给定的刺激转化为各种各样复杂的多尺度模式和适应性反应。可以进一步优化凝胶的化学性质和纳米结构的柔性,以将表面结合到各种结构和环境中。我们设想使用该平台来创建一代可持续,自适应和自我报告的材料。

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