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Polymer-inorganic core-shell nanofibers by electrospinning and atomic layer deposition: Flexible nylon-ZnO core-shell nanofiber mats and their photocatalytic activity

机译:静电纺丝和原子层沉积的聚合物-无机核-壳纳米纤维:柔性尼龙-ZnO核-壳纳米纤维垫及其光催化活性

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摘要

Polymer-inorganic core-shell nanofibers were produced by two-step approach; electrospinning and atomic layer deposition (ALD). First, nylon 6,6 (polymeric core) nanofibers were obtained by electrospinning, and then zinc oxide (ZnO) (inorganic shell) with precise thickness control was deposited onto electrospun nylon 6,6 nanofibers using ALD technique. The bead-free and uniform nylon 6,6 nanofibers having different average fiber diameters (∼80, ∼240 and ∼650 nm) were achieved by using two different solvent systems and polymer concentrations. ZnO layer about 90 nm, having uniform thickness around the fiber structure, was successfully deposited onto the nylon 6,6 nanofibers. Because of the low deposition temperature utilized (200 °C), ALD process did not deform the polymeric fiber structure, and highly conformal ZnO layer with precise thickness and composition over a large scale were accomplished regardless of the differences in fiber diameters. ZnO shell layer was found to have a polycrystalline nature with hexagonal wurtzite structure. The core-shell nylon 6,6-ZnO nanofiber mats were flexible because of the polymeric core component. Photocatalytic activity of the core-shell nylon 6,6-ZnO nanofiber mats were tested by following the photocatalytic decomposition of rhodamine-B dye. The nylon 6,6-ZnO nanofiber mat, having thinner fiber diameter, has shown better photocatalytic efficiency due to higher surface area of this sample. These nylon 6,6-ZnO nanofiber mats have also shown structural stability and kept their photocatalytic activity for the second cycle test. Our findings suggest that core-shell nylon 6,6-ZnO nanofiber mat can be a very good candidate as a filter material for water purification and organic waste treatment because of their photocatalytic properties along with structural flexibility and stability. © 2012 American Chemical Society.
机译:聚合物-无机核-壳纳米纤维是通过两步法制备的。电纺和原子层沉积(ALD)。首先,通过电纺丝获得尼龙6,6(聚合物核)纳米纤维,然后使用ALD技术将具有精确厚度控制的氧化锌(ZnO)(无机壳)沉积到电纺尼龙6,6纳米纤维上。通过使用两种不同的溶剂体系和聚合物浓度,可以得到平均直径不同(〜80,〜240和〜650 nm)的无珠且均匀的尼龙6,6纳米纤维。将约90 nm的ZnO层成功地沉积在尼龙6,6纳米纤维上,该纤维层周围纤维结构的厚度均匀。由于使用的沉积温度低(200°C),ALD工艺不会使聚合物纤维结构变形,并且无论纤维直径如何,均可在较大规模上实现具有精确厚度和成分的高度共形的ZnO层。发现ZnO壳层具有六方纤锌矿结构的多晶性质。核-壳尼龙6,6-ZnO纳米纤维垫由于具有聚合物核成分而具有柔性。罗丹明B染料的光催化分解测试了核壳尼龙6,6-ZnO纳米纤维垫的光催化活性。具有更细纤维直径的尼龙6,6-ZnO纳米纤维垫由于该样品的表面积较大而显示出更好的光催化效率。这些尼龙6,6-ZnO纳米纤维垫也显示出结构稳定性,并在第二个循环测试中保持了其光催化活性。我们的研究结果表明,核壳尼龙6,6-ZnO纳米纤维毡由于其具有光催化性能以及结构柔性和稳定性,因此可以作为用于水净化和有机废物处理的过滤材料非常好。 ©2012美国化学学会。

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