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TiO2 Based Nanostructures for Photocatalytic CO2 Conversion to Valuable Chemicals

机译:基于TiO2的纳米结构可将光催化CO2转化为有价值的化学物质

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摘要

Photocatalytic conversion of CO2 to useful products is an alluring approach for acquiring the two-fold benefits of normalizing excess atmospheric CO2 levels and the production of solar chemicals/fuels. Therefore, photocatalytic materials are continuously being developed with enhanced performance in accordance with their respective domains. In recent years, nanostructured photocatalysts such as one dimensional (1-D), two dimensional (2-D) and three dimensional (3-D)/hierarchical have been a subject of great importance because of their explicit advantages over 0-D photocatalysts, including high surface areas, effective charge separation, directional charge transport, and light trapping/scattering effects. Furthermore, the strategy of doping (metals and non-metals), as well as coupling with a secondary material (noble metals, another semiconductor material, graphene, etc.), of nanostructured photocatalysts has resulted in an amplified photocatalytic performance. In the present review article, various titanium dioxide (TiO2)-based nanostructured photocatalysts are briefly overviewed with respect to their application in photocatalytic CO2 conversion to value-added chemicals. This review primarily focuses on the latest developments in TiO2-based nanostructures, specifically 1-D (TiO2 nanotubes, nanorods, nanowires, nanobelts etc.) and 2-D (TiO2 nanosheets, nanolayers), and the reaction conditions and analysis of key parameters and their role in the up-grading and augmentation of photocatalytic performance. Moreover, TiO2-based 3-D and/or hierarchical nanostructures for CO2 conversions are also briefly scrutinized, as they exhibit excellent performance based on the special nanostructure framework, and can be an exemplary photocatalyst architecture demonstrating an admirable performance in the near future.
机译:将CO2光催化转化为有用产品是一种吸引人的方法,可实现将大气中过量CO2水平标准化和生产太阳能化学品/燃料的双重好处。因此,根据其各自的领域,以增强的性能不断地开发光催化材料。近年来,一维(1-D),二维(2-D)和三维(3-D)/分层等纳米结构光催化剂因其相对于0-D光催化剂的显着优势而成为重要课题。包括高表面积,有效的电荷分离,定向电荷传输和光捕获/散射效应。此外,纳米结构光催化剂的掺杂(金属和非金属)以及与辅助材料(贵金属,另一种半导体材料,石墨烯等)偶联的策略导致了光催化性能的提高。在当前的评论文章中,简要概述了各种基于二氧化钛(TiO2)的纳米结构光催化剂,它们在将光催化CO2转化为增值化学品中的应用。这篇综述主要关注基于TiO2的纳米结构的最新发展,特别是1-D(TiO2纳米管,纳米棒,纳米线,纳米带等)和2-D(TiO2纳米片,纳米层),以及反应条件和关键参数分析及其在光催化性能升级和增强中的作用。此外,还对基于TiO2的3-D和/或用于CO2转化的分层纳米结构进行了详细审查,因为它们基于特殊的纳米结构框架表现出出色的性能,并且可以成为示例性光催化剂体系结构,在不久的将来展现出令人钦佩的性能。

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