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Self-assembled micropillar arrays via near-field electrospinning

机译:通过近场静电纺丝的自组装微柱阵列

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Self-assembly in near-field electrospinning is reported for the first time in this paper, which realized the conversion from two-dimensional planar printing to three-dimensional (3D) structures. Repeatedly stacked fibres formed a micropillar array structure (MPAS) with intervals on the deposition paths by adding carbonyl iron powder particles to a polyethylene oxide (PEO) solution. The growth process of the self-assembled MPAS is documented, and the mechanism of the self-assembled MPAS is proposed. In addition, the effects of substrate speed and injection speed on self-assembly were investigated. Electric field distribution simulations show that the electric field strength around the MPAS is enhanced by nearly ten times so that the micropillar can attract the jet for further deposition. Self-assembly can obtain MPASs with arbitrary paths on different substrates, and the interval of the MPAS can be controlled by using bulging substrates. Furthermore, a self-assembled MPAS has been successfully used to prepare mold cavities, which can be used to prepare MPASs of other materials. Due to their small feature size, large surface area and structural periodicity, micropillar arrays will have promising applications, such as hydrophobicity of surfaces and electrochemical detection. Self-assembly in near-field electrospinning can significantly reduce the preparation cost of an MPAS and provide new processes and ideas.
机译:自组装在近场电纺本文首次报道意识到二维的转换平面印刷三维(3 d)结构。micropillar数组结构(海洋保护区)间隔通过添加羰基铁沉积的路径粉末粒子聚氧化乙烯(PEO)解决方案。自组装海洋保护区是记录,自组装的机理提出了海洋保护区。此外,衬底的影响速度和注入速度对自组装调查。模拟显示,电场强度在海洋保护区是增强了近十倍所以micropillar可以吸引的飞机进一步沉积。海洋保护区具有任意路径不同基板上,海洋保护区的间隔通过使用膨胀基质控制。此外,自组装海洋保护区成功地用于准备模具腔,可以用来准备海洋保护区的其他材料。由于特征尺寸小,大的表面面积和结构周期性,micropillar数组的应用前景,如疏水性的表面和电化学检测。电纺的可以显著减少准备一个海洋保护区和提供新的成本过程和想法。

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