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从微流控中收获具有粗糙纺锤结的仿生微纤维的水。

Water Harvesting of Bioinspired Microfibers with Rough Spindle-Knots from Microfluidics.

机构信息

Key Laboratory of Bioinspired Smart Interfacial Science and Technology of Ministry of Education, School of Chemistry and Beijing Advanced Innovation Center for Biomedical Engineering, Beihang University (BUAA), Beijing, 100191, P. R. China.

School of Chemistry, Beihang University (BUAA), Beijing, 100191, P. R. China.

出版信息

Small. 2020 Mar;16(9):e1901819. doi: 10.1002/smll.201901819. Epub 2019 Aug 5.

DOI:10.1002/smll.201901819
PMID:31379136
Abstract

Heterostructure rough spindle-knot microfibers (HRSFs) are fabricated via a flexible parallel-nozzle microfluidic method. In this method, the bioinspired HRSF with a roughness gradient between spindle-knots and joints, can be manufactured in large-scale, and with which the size of the spindle-knots and joints can be precisely adjusted by regulating flow rates. The HRSFs, fabricated with chitosan and calcium alginate, have strong mechanical properties and corrosion resistance in acid environment (pH = 5) and alkaline environment (pH = 9), respectively. More attractively, under controlled treatment conditions, the morphology of the spindle-knots on the HRSFs can be effectively managed by changing the composite content of calcium chloride in the fluid. During the water collection process, tiny droplets of moisture can be captured on the surface of the HRSFs, subsequently, the droplets can coalesce and be transported from joint to spindle-knot sections. It is demonstrated that the surface morphology of spindle-knots directly influences the water collection efficiency, where a higher roughness gradient generates higher water collection efficiency. This parallel-nozzle microfluidic technology provides a low-cost and flexible method to manufacture high biocompatibility bioinspired rough spindle-knot microfibers, which has many potential applications in large-scale water collection, sustained drug release, and directional water collection.

摘要

杂化粗糙纺锤结微纤维(HRSFs)是通过灵活的平行喷嘴微流控方法制造的。在这种方法中,可以大规模制造具有纺锤结和连接处之间粗糙度梯度的仿生 HRSF,并且可以通过调节流速来精确调整纺锤结和连接处的大小。用壳聚糖和海藻酸钠制造的 HRSF 在酸性环境(pH=5)和碱性环境(pH=9)中分别具有很强的机械性能和耐腐蚀性。更吸引人的是,在受控的处理条件下,可以通过改变流体中氯化钙的复合含量来有效控制 HRSFs 上的纺锤结的形态。在集水过程中,表面会捕获微小的水滴,然后这些水滴会合并并从连接处运输到纺锤结部分。实验证明,纺锤结的表面形态直接影响集水效率,其中较高的粗糙度梯度会产生更高的集水效率。这种平行喷嘴微流控技术为制造具有高生物相容性的仿生粗糙纺锤结微纤维提供了一种低成本、灵活的方法,在大规模集水、持续药物释放和定向集水等方面具有许多潜在的应用。

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