Department of Materials Science and Engineering and ‡Materials Science Center, University of Wisconsin-Madison , Madison, Wisconsin 53706, United States.
Nano Lett. 2014 May 14;14(5):2528-35. doi: 10.1021/nl5002907. Epub 2014 Apr 1.
Hollow nanostructures are promising building blocks for electrode scaffolds and catalyst carriers in energy-related systems. In this paper, we report a discovery of hollow TiO2 nanostructure evolution in a vapor-solid deposition system. By introducing TiCl4 vapor pulses to ZnO nanowire templates, we obtained TiO2 tubular nanostructures with well-preserved dimensions and morphology. This process involved the cation exchange reaction between TiCl4 vapor and ZnO solid and the diffusion of reactants and products in their vapor or solid phases, which was likely a manifestation of the Kirkendall effect. The characteristic morphologies and the evolution phenomena of the hollow nanostructures from this vapor-solid system were in a good agreement with the Kirkendall effect discovered in solution systems. Complex hollow TiO2 nanostructures were successfully acquired by replicating various ZnO nanomorphologies, suggesting that this unique cation exchange process could also be a versatile tool for nanostructure replication in vapor-solid growth systems. The evolution of TiO2 nanotubes from ZnO NW scaffolds was seamlessly integrated with TiO2 NR branch growth and thus realized a pure TiO2-phased 3D NW architecture. Because of the significantly enlarged surface area and the trace amount of Zn left in the TiO2 crystals, such 3D TiO2 nanoforests demonstrated enhanced photoelectrochemical performance particularly under AM (air mass) 1.5G illumination, offering a new route for hierarchical functional nanomaterial assembly and application.
中空纳米结构是能源相关系统中电极支架和催化剂载体的有前途的构建块。在本文中,我们报告了在汽-固沉积系统中发现的 TiO2 中空纳米结构的演变。通过向 ZnO 纳米线模板中引入 TiCl4 蒸汽脉冲,我们获得了尺寸和形态保持良好的 TiO2 管状纳米结构。这个过程涉及 TiCl4 蒸汽和 ZnO 固体之间的阳离子交换反应,以及反应物和产物在它们的气相或固相中的扩散,这可能是 Kirkendall 效应的表现。这种汽-固体系中空纳米结构的特征形态和演化现象与在溶液体系中发现的 Kirkendall 效应非常吻合。通过复制各种 ZnO 纳米形态,成功获得了复杂的中空 TiO2 纳米结构,这表明这种独特的阳离子交换过程也可能成为汽-固生长体系中纳米结构复制的通用工具。TiO2 纳米管从 ZnO NW 支架的演化与 TiO2 NR 分支的生长无缝集成,从而实现了纯 TiO2 相的 3D NW 结构。由于表面面积显著增加和 TiO2 晶体中残留的痕量 Zn,这种 3D TiO2 纳米森林在 AM(空气质量)1.5G 光照下表现出增强的光电化学性能,为分层功能纳米材料组装和应用提供了新途径。