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Reversible Structure Engineering of Bioinspired Anisotropic Surface for Droplet Recognition and Transportation

机译:液滴识别与运输的BioinSpired各向异性表面可逆结构工程

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摘要

Surfaces with tunable liquid adhesion have aroused great attention in past years. However, it remains challenging to endow a surface with the capability of droplet recognition and transportation. Here, a bioinspired surface, termed as TMAS, is presented that is inspired by isotropic lotus leaves and anisotropic butterfly wings. The surface is prepared by simply growing a triangular micropillar array on the pre‐stretched thin poly(dimethylsiloxane) (PDMS) film. The regulation of mechanical stress in the PDMS film allows the fine tuning of structural parameters of the micropillar array reversibly, which results in the instantaneous, in situ switching between isotropic and various degrees of anisotropic droplet adhesions, and between strong adhesion and directional sliding of water droplets. TMAS can thus be used for robust droplet transportation and recognition of acids, bases, and their pH strengths. The results here could inspire the design of robust sensor techniques.
机译:可调谐液体粘连的表面在过去几年中引起了很大的关注。然而,赋予表面具有液滴识​​别和运输能力仍然具有挑战性。这里,提出了一种作为TMA称为TMA的生物悬浮的表面,其受到各向同性莲花叶和各向异性蝶翼的启发。通过简单地在预拉伸的薄聚(二甲基硅氧烷)(PDMS)膜上的三角微粒阵列制备表面。 PDMS膜中的机械应力的调节允许可逆地调整微米阵列的结构参数,这导致瞬间,原位在各向同性和各种程度的各向异性液滴粘连之间,以及水的强粘附和方向滑动之间的水飞沫。因此,TMA可以用于鲁棒液滴运输和酸,碱和它们的pH强度的识别。此处的结果可以激发鲁棒传感器技术的设计。

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