Department of Functional Materials Science, Graduate School of Science and Engineering, Saitama University, 255 Shimo-Okubo, Sakura-ku, Saitama 338-8570, Japan.
Comprehensive Analysis Center for Science, Saitama University, 255 Shimo-Okubo, Sakura-ku, Saitama 338-8570, Japan.
Nanoscale Res Lett. 2014 May 29;9(1):267. doi: 10.1186/1556-276X-9-267. eCollection 2014.
Electrospinning is a versatile technique, which can be used to generate nanofibers from a rich variety of materials. We investigate the variation of a zinc oxide (ZnO)-polyvinylpyrrolidone (PVP) composite structure in morphology by electrospinning from a series of mixture solutions of ZnO sol-gel and PVP. Calcination conditions for the crystallization of ZnO nanofibers and removal of the PVP component from the ZnO-PVP composite nanofibers were also studied. The progression of the ZnO-PVP composite structure from grains to nanofibers was observed, and ZnO-PVP nanofibers as thin as 29.9 ± 0.8 nm on average were successfully fabricated. The size of the resultant ZnO-PVP composite nanofibers was considerably affected by two parameters: the concentrations of zinc acetate and PVP in the precursor solution. The concentration of zinc acetate particularly influenced the diameter distribution of the ZnO-PVP nanofibers. The ZnO-PVP nanofibers could be subsequently converted into ZnO nanofibers of a pure wurtzite phase via calcination in air at 500°C for 2 h.
静电纺丝是一种通用技术,可以用来从各种材料中生成纳米纤维。我们通过从一系列 ZnO 溶胶-凝胶和 PVP 的混合溶液中进行静电纺丝,研究了 ZnO-聚乙烯吡咯烷酮(PVP)复合材料结构在形态上的变化。还研究了 ZnO 纳米纤维的结晶和 ZnO-PVP 复合纳米纤维中 PVP 成分去除的煅烧条件。观察到 ZnO-PVP 复合材料结构从颗粒到纳米纤维的演变过程,并成功制备了平均厚度为 29.9±0.8nm 的 ZnO-PVP 纳米纤维。两个参数对所得 ZnO-PVP 复合纳米纤维的尺寸有很大影响:前驱体溶液中乙酸锌和 PVP 的浓度。乙酸锌的浓度特别影响 ZnO-PVP 纳米纤维的直径分布。通过在空气中于 500°C 煅烧 2 小时,可将 ZnO-PVP 纳米纤维进一步转化为纯纤锌矿相的 ZnO 纳米纤维。