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水热合成、结构特性及 SnO(2)/alpha-Fe(2)O(3) 半导体纳米异质结构的增强光催化性能。

Hydrothermal synthesis, structural characteristics, and enhanced photocatalysis of SnO(2)/alpha-Fe(2)O(3) semiconductor nanoheterostructures.

机构信息

Fujian Institute of Research on the Structure of Matter, Chinese Academy of Sciences, Fuzhou, Fujian 350002, China.

出版信息

ACS Nano. 2010 Feb 23;4(2):681-8. doi: 10.1021/nn901119a.

Abstract

Branched SnO(2)/alpha-Fe(2)O(3) semiconductor nanoheterostructures (SNHs) of high purity were synthesized by a low-cost and environmentally friendly hydrothermal strategy, through crystallographic-oriented epitaxial growth of the SnO(2) nanorods onto the alpha-Fe(2)O(3) nanospindles and nanocubes, respectively. It was demonstrated that the SnO(2) nanorods would change their preferential growth direction on the varied alpha-Fe(2)O(3) precursors with distinct crystallographic surface, driven by decrease in the distortion energy induced by lattice mismatch at the interfaces. All of the prepared SNHs were of high purity, ascribing to the successful preinhibition of the SnO(2) homonucleation in the reaction system. Significantly, some of the SnO(2)/alpha-Fe(2)O(3) SNHs exhibited excellent visible light or UV photocatalytic abilities, remarkably superior to their alpha-Fe(2)O(3) precursors, mainly owing to the effective electron-hole separation at the SnO(2)/alpha-Fe(2)O(3) interfaces.

摘要

支化的 SnO(2)/α-Fe(2)O(3) 半导体纳米异质结构(SNHs)通过低成本且环保的水热策略合成,分别通过 SnO(2)纳米棒在 α-Fe(2)O(3)纳米纺锤体和纳米立方体上的晶向外延生长来实现。研究表明,SnO(2)纳米棒在具有不同晶面的 α-Fe(2)O(3)前体上的优先生长方向会发生变化,这是由界面处晶格失配引起的畸变能降低所驱动的。所有制备的 SNHs 均具有高纯度,这归因于在反应体系中成功地预先抑制了 SnO(2)的均相成核。值得注意的是,一些 SnO(2)/α-Fe(2)O(3) SNHs 表现出优异的可见光或紫外光光催化活性,明显优于其 α-Fe(2)O(3)前体,主要归因于 SnO(2)/α-Fe(2)O(3)界面处的有效电子-空穴分离。

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