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首页> 外文期刊>Advanced Functional Materials >Porous Single-Crystal-Based Inorganic Semiconductor Photocatalysts for Energy Production and Environmental Remediation: Preparation, Modification, and Applications
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Porous Single-Crystal-Based Inorganic Semiconductor Photocatalysts for Energy Production and Environmental Remediation: Preparation, Modification, and Applications

机译:用于能量产生和环境修复的多孔单晶基无机半导体光催化剂:制备,改性和应用

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Semiconductor photocatalytic and photovoltaic performance depends on crystallinity and surface area to a large extent. One strategy that has recently emergyed to improve semiconductor photoresponse efficiency is their synthesis as porous single crystals (PSCs), therefore providing simultaneously high crystallinity, minimization of grain boundaries, and large specific surface area. Other factors, such as high density of active sites, and enhanced light absorption, also contribute to increased PSC photoresponse with respect to analogous bulk or amorphous materials. This review initially presents the concept and main properties of PSCs. Then, the synthetic routes and the applications as photocatalysts and as photovoltaic devices, mainly in sunlight applications, are summarized. The synthetic procedures have been classified according to the mechanism of pore generation. Applications cover photocatalysis for environmental remediation, solar fuels production, selective photooxidation of organic compounds, and photovoltaic devices. Finally, a summary and views on future developments are provided. The purpose of this review is to show how the use of PSCs is a powerful general methodology applicable beyond metal oxides and can ultimately lead to sufficient photoresponse efficiency, bringing these processes close to commercial application.
机译:半导体的光催化和光伏性能在很大程度上取决于结晶度和表面积。最近能提高半导体光响应效率的一种策略是将其合成为多孔单晶(PSC),从而同时提供高结晶度,最小化晶界和大比表面积。相对于类似的块状或非晶态材料,其他因素,例如高活性位点密度和增强的光吸收,也有助于增加PSC光响应。本文首先介绍了PSC的概念和主要特性。然后,总结了主要在日光应用中的合成路线和作为光催化剂和光伏器件的应用。合成方法已根据造孔机理进行了分类。应用范围包括用于环境修复的光催化,太阳能燃料的生产,有机化合物的选择性光氧化以及光伏设备。最后,提供了对未来发展的总结和看法。这篇综述的目的是说明PSC的使用是一种强大的通用方法,不仅适用于金属氧化物,而且最终可导致足够的光响应效率,使这些工艺接近于商业应用。

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