State Key Laboratory for Mesoscopic Physics and Electron Microscopy Laboratory, School of Physics, Peking University, Beijing 100871, P. R. China.
Nanoscale. 2011 Oct 5;3(10):4418-26. doi: 10.1039/c1nr10922g. Epub 2011 Sep 19.
Single-crystalline, high-quality branched ZnTe-core/ZnO-branch nanoheterostructures were synthesized by an in situ strategy in an environmental scanning electron microscope. Composition and structure characterization confirmed that ZnO nanowires were perfectly epitaxially grown on ZnTe nanowires as branches. Noticeably, growth temperature plays a crucial role in determining the density and diameter of the ZnO nanobranches on ZnTe nanowires: a higher growth temperature leads to ZnO nanowires with higher density and smaller diameter. It was demonstrated that ZnO nanobranches exhibited a selective nucleation behavior on distinct side facets of ZnTe nanowires. Highly ordered ZnO nanobranches were found epitaxially grown on {211} facet of ZnTe nanowires, while there was no ZnO nanowire growth on {110} facet of ZnTe nanowires. Using first-principles calculation, we found that surface energy of distinct side facets has a strong impact on ZnO nucleation, and confirm that {211} facet of ZnTe nanowires is energetically more favorable for ZnO nanowire growth than {110} facet, which is in good agreement with our experimental findings. Remarkably, such unique ZnTe/ZnO 3D branched nanowire heterostructures exhibited improved photocatalytic abilities, superior to ZnO nanowires and ZnTe nanowires, due to the much enhanced effective surface area of their unique architecture and effective electron-hole separation at the ZnTe/ZnO interfaces.
通过在环境扫描电子显微镜中采用原位策略,合成了单晶、高质量的 ZnTe 核/ZnO 支纳米异质结构。组成和结构特征证实,ZnO 纳米线作为支完美地在 ZnTe 纳米线上外延生长。值得注意的是,生长温度在决定 ZnO 纳米支在 ZnTe 纳米线上的密度和直径方面起着关键作用:较高的生长温度导致 ZnO 纳米线具有更高的密度和更小的直径。结果表明,ZnO 纳米支在 ZnTe 纳米线的不同侧面对称面上表现出选择性成核行为。发现高度有序的 ZnO 纳米支在 ZnTe 纳米线的 {211} 面对称面上外延生长,而在 ZnTe 纳米线的 {110} 面对称面上没有 ZnO 纳米线生长。通过第一性原理计算,我们发现不同侧面对称面的表面能对 ZnO 成核有很大影响,并证实 ZnTe 纳米线的 {211} 面对称面比 {110} 面对称面更有利于 ZnO 纳米线的生长,这与我们的实验结果一致。值得注意的是,由于独特结构的有效表面积大大增加以及在 ZnTe/ZnO 界面处的电子-空穴有效分离,这种独特的 ZnTe/ZnO 3D 分支纳米线异质结构表现出了增强的光催化能力,优于 ZnO 纳米线和 ZnTe 纳米线。