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Dual-gradient enabled ultrafast biomimetic snapping of hydrogel materials

机译:双梯度可实现水凝胶材料的超快速仿生吸附

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The design of materials that can mimic the complex yet fast actuation phenomena in nature is important but challenging. Herein, we present a new paradigm for designing responsive hydrogel sheets that can exhibit ultrafast inverse snapping deformation. Dual-gradient structures of hydrogel sheets enable the accumulation of elastic energy in hydrogels by converting prestored energy and rapid reverse snapping (1 s) to release the energy. By controlling the magnitude and location of energy prestored within the hydrogels, the snapping of hydrogel sheets can be programmed to achieve different structures and actuation behaviors. We have developed theoretical model to elucidate the crucial role of dual gradients and predict the snapping motion of various hydrogel materials. This new design principle provides guidance for fabricating actuation materials with applications in tissue engineering, soft robotics, and active medical implants.
机译:可以模仿自然界中复杂而快速的驱动现象的材料的设计固然重要,但却极富挑战性。在本文中,我们提出了一种新的范式,用于设计可表现出超快反向吸附变形的响应水凝胶片材。水凝胶片材的双梯度结构可通过转换预存储的能量和快速反向折断(<1 s)释放能量来在水凝胶中积累弹性能。通过控制预先存储在水凝胶中的能量的大小和位置,可以对水凝胶片的吸附进行编程以实现不同的结构和驱动行为。我们已经开发出理论模型来阐明双重梯度的关键作用,并预测各种水凝胶材料的弹跳运动。这一新的设计原理为在组织工程,软机器人和有源医疗植入物中的应用提供了制造驱动材料的指南。

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