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首页> 外文期刊>Solar Energy Materials and Solar Cells: An International Journal Devoted to Photovoltaic, Photothermal, and Photochemical Solar Energy Conversion >Effect of Fe2O3 coating on ZnO nanowires in photoelectrochemical water splitting: A synchrotron x-ray spectroscopic and spectromicroscopic investigation
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Effect of Fe2O3 coating on ZnO nanowires in photoelectrochemical water splitting: A synchrotron x-ray spectroscopic and spectromicroscopic investigation

机译:Fe2O3涂层对光电化学水分裂ZnO纳米线的影响:一种同步X射线光谱和光谱分析

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摘要

An array of ZnO/Fe2O3 core-shell nanowires (NW) for the highly efficient absorption of light and carrier collection is developed for use in photoelectrochemical (PEC) water-splitting. The oriented NW architecture favors physical matching, providing a direct electron conduction pathway and reducing the diffusion length of photogenerated holes. This work involves a combination of spectral imaging, spectromicroscopy and in situ x-ray absorption spectroscopy; spectra are obtained under operando conditions. Direct investigation of oriented nanowires using polarization-dependent x-ray spectromicroscopy enables the determination of the relationship between anisotropic electronic orbitals and charge carrier water-splitting efficiency. The results of O K-edge STXM demonstrated that the ZnO/Fe2O3 core-shell NW exhibits strong anisotropy and thus provides higher electron-hole transport efficiency than bare ZnO. In situ XAS revealed that interfacial charge transfer between Fe 3d and Zn 4p states enhances the photoelectrochemical reaction in the ZnO/Fe2O3 core-shell NW. The photogenerated electrons of Fe2O3 are transferred from Fe 3d states to the Zn 4p state under photoelectrochemical conditions.
机译:用于高效吸收光和载体收集的ZnO / Fe2O3核心壳纳米线(NW)以用于光电化学(PEC)水分解。面向的NW架构有利于物理匹配,提供直接电子传导通路并减小光生孔的扩散长度。这项工作涉及光谱成像,光谱分析,以及原位X射线吸收光谱的组合;光谱在Operando条件下获得。使用偏振依赖性X射线光谱的导向纳米线的直接研究能够确定各向异性电子轨道和电荷载流子分裂效率之间的关系。 O K-EDGE STXM的结果证明,ZnO / Fe2O3核心壳NW表现出强大的各向异性,从而提供比裸ZnO更高的电子空穴运输效率。原位XAS显示Fe 3D和Zn 4P状态之间的界面电荷转移增强了ZnO / Fe 2 O 3核心壳NW中的光电化学反应。在光电化学条件下,Fe2O3的光静态电子从Fe 3D状态转移到Zn 4P状态。

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