Flexible hemline-shaped microfibers for liquid transport

Chaoyu Yang, Yunru Yu, Luoran Shang, Yuanjin Zhao
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Abstract

Directional liquid transport is important in both fundamental studies and industrial applications. Most existing strategies rely on the use of predesigned surfaces with sophisticated microstructures that limit the versatility and universality of the liquid transport. Here we present a platform for liquid transport based on flexible microfluidic-derived fibers with hemline-shaped cross-sections. These microfibers have periodic parallel microcavities along the axial direction, with sharp edges and wedge corners that enable unilateral pinning and capillary rise of liquids. This structure enables directional liquid transport along hydrophilic substrates with the use of a single fiber. Alternatively, a pair of fibers enables directional liquid transport along hydrophobic substrates or even without any additional substrate; the directional transport behavior applies to a wide range of liquids. We demonstrate the use of these fibers in open microfluidics, water extraction and liquid transport along arbitrary three-dimensional paths. Our platform provides a facile and universal solution for directional liquid transport in a range of different scenarios. A flexible hemline-shaped microfiber featuring periodic parallel microcavities with sharp edges and wedges was developed using microfluidics to achieve unidirectional liquid transport along arbitrary pathways.

Abstract Image

用于液体输送的柔性下摆微纤维
定向液体传输在基础研究和工业应用中都非常重要。现有的大多数策略都依赖于使用预先设计的具有复杂微结构的表面,这限制了液体传输的通用性和普遍性。在这里,我们提出了一种基于柔性微流体衍生纤维的液体传输平台,其横截面呈下摆状。这些微纤维沿轴向具有周期性的平行微空腔,其锐利的边缘和楔角可实现液体的单侧针刺和毛细上升。这种结构只需使用一根纤维,就能使液体沿着亲水性基底定向传输。另外,一对纤维也可实现液体沿疏水基底的定向传输,甚至无需任何附加基底;定向传输行为适用于多种液体。我们展示了这些纤维在开放式微流体、水提取和液体沿任意三维路径传输中的应用。我们的平台为各种不同情况下的液体定向传输提供了一种简便、通用的解决方案。我们利用微流体技术开发了一种柔性下摆形微纤维,其特点是具有尖锐边缘和楔形的周期性平行微腔,可实现沿任意路径的单向液体传输。
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