主动扭转自适应液滴收集。

IF 12 Q1 COMPUTER SCIENCE, INTERDISCIPLINARY APPLICATIONS
Nature computational science Pub Date : 2025-04-01 Epub Date: 2025-04-21 DOI:10.1038/s43588-025-00786-w
Yifan Yang, Zhijun Dai, Yuzhen Chen, Fan Xu
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引用次数: 0

摘要

许多干旱植物叶片表现出弯曲和扭曲的形态,这可能有助于它们适应干旱和沙漠条件的重要生物和物理功能。揭示各种形态和功能之间的关系可以启发设备设计,以满足日益严格的环境要求。在液晶弹性体仿生双分子带上,我们发现通过设计液晶弹性体双分子带的定向取向,可以选择性地实现和精确调节刺激诱导的弯曲、螺旋、扭曲和各种耦合状态的形态演化。建立了定量分析液晶弹性体带的形态选择和相变的数学模型和解析解,为材料设计提供了理论依据。研究表明,在外部刺激的激活和控制下,扭转结构可以有效地收集和引导液滴的运输,并增强结构刚度以抵抗风吹和雨淋,从而达到最优的集水配置。我们的研究结果揭示了自然界中广泛存在的弯曲、螺旋和扭曲形态相关的有趣功能,为它们的形状转换和控制因素提供了基本的见解。这项工作还展示了将形态发生-环境相互作用集成到设备或设备中的潜在应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Active twisting for adaptive droplet collection.

Many xeric plant leaves exhibit bending and twisting morphology, which may contribute to their important biological and physical functions adapted to drought and desert conditions. Revealing the relationships between various morphologies and functionalities can inspire device designs for meeting increasingly stringent environmental requirements. Here, demonstrated on the biomimetic bilayer ribbons made of liquid crystal elastomers, we reveal that the stimulus-induced morphological evolution of bending, spiraling, twisting and various coupling states among them can be selectively achieved and precisely tuned by designing the director orientations in liquid crystal elastomer bilayers. The mathematical models and analytical solutions are developed to quantify the morphology selection and phase transition of these liquid crystal elastomer ribbons for material design, as confirmed by experiments. Moreover, we show that, under activation and control of external stimuli, the twisting configuration can be harnessed to effectively collect and guide the transportation of droplets, and enhance the structural stiffness for resisting wind blow and rainfall to achieve the optimal configuration for water collection. Our results reveal the interesting functions correlated with bending, spiraling and twisting morphologies widely present in the natural world, by providing fundamental insights into their shape transformation and controlling factors. This work also demonstrates a potential application with integrating morphogenesis-environment interactions into devices or equipments.

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CiteScore
11.70
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