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用于太阳能燃料的双光子半导体结构中的电荷传输

Charge Transport in Two-Photon Semiconducting Structures for Solar Fuels.

作者信息

Liu Guohua, Du Kang, Haussener Sophia, Wang Kaiying

机构信息

Department of Micro and Nano Systems Technology, University College of Southeast Norway, Horten, 3184, Norway.

School of Energy and Environment, Anhui University of Technology, Maanshan, 243002, PR China.

出版信息

ChemSusChem. 2016 Oct 20;9(20):2878-2904. doi: 10.1002/cssc.201600773. Epub 2016 Sep 14.

Abstract

Semiconducting heterostructures are emerging as promising light absorbers and offer effective electron-hole separation to drive solar chemistry. This technology relies on semiconductor composites or photoelectrodes that work in the presence of a redox mediator and that create cascade junctions to promote surface catalytic reactions. Rational tuning of their structures and compositions is crucial to fully exploit their functionality. In this review, we describe the possibilities of applying the two-photon concept to the field of solar fuels. A wide range of strategies including the indirect combination of two semiconductors by a redox couple, direct coupling of two semiconductors, multicomponent structures with a conductive mediator, related photoelectrodes, as well as two-photon cells are discussed for light energy harvesting and charge transport. Examples of charge extraction models from the literature are summarized to understand the mechanism of interfacial carrier dynamics and to rationalize experimental observations. We focus on a working principle of the constituent components and linking the photosynthetic activity with the proposed models. This work gives a new perspective on artificial photosynthesis by taking simultaneous advantages of photon absorption and charge transfer, outlining an encouraging roadmap towards solar fuels.

摘要

半导体异质结构正成为有前景的光吸收体,并能实现有效的电子-空穴分离以驱动太阳能化学过程。这项技术依赖于在氧化还原介质存在下工作且能形成级联结以促进表面催化反应的半导体复合材料或光电极。合理调节其结构和组成对于充分发挥其功能至关重要。在本综述中,我们描述了将双光子概念应用于太阳能燃料领域的可能性。讨论了多种策略,包括通过氧化还原对间接组合两种半导体、直接耦合两种半导体、具有导电介质的多组分结构、相关光电极以及双光子电池,用于光能收集和电荷传输。总结了文献中的电荷提取模型示例,以理解界面载流子动力学机制并合理解释实验观察结果。我们专注于组成部件的工作原理,并将光合活性与所提出的模型联系起来。这项工作通过同时利用光子吸收和电荷转移的优势,为人工光合作用提供了新的视角,勾勒出一条通往太阳能燃料的令人鼓舞的路线图。

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