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石墨烯/YInO₃纳米复合材料在可见光照射下的高效光催化析氢

Highly efficient photocatalytic hydrogen evolution of graphene/YInO3 nanocomposites under visible light irradiation.

作者信息

Ding Jianjun, Yan Wenhao, Xie Wei, Sun Song, Bao Jun, Gao Chen

机构信息

National Synchrotron Radiation Laboratory and Collaborative Innovation Center of Chemistry for Energy Materials, University of Science and Technology of China, Hefei, Anhui 230029, China.

出版信息

Nanoscale. 2014 Feb 21;6(4):2299-306. doi: 10.1039/c3nr05984g. Epub 2014 Jan 13.

Abstract

Visible-light-driven hydrogen evolution with high efficiency is important in the current photocatalysis research. Here we report for the first time the design and synthesis of a new graphene-semiconductor nanocomposite consisting of YInO3 nanoparticles and two-dimensional graphene sheets as efficient photocatalysts for hydrogen evolution under visible light irradiation. The graphene/YInO3 nanocomposites were synthesized using a facile solvothermal method in which the formation of graphene and the deposition of YInO3 nanoparticles on the graphene sheets can be achieved simultaneously. The addition of graphene as a cocatalyst can narrow the band gap of YInO3 to visible photon energy and prolong the separation and lifetime of electron-hole pairs by the chemical bonding between YInO3 and graphene. The photocatalytic reaction with this nanocomposite reaches a high H2 evolution rate of 400.4 μmol h(-1) g(-1) when the content of graphene is 0.5 wt%, over 127 and 3.7 times higher than that of pure YInO3 and Pt/YInO3, respectively. This work can provide an effective approach to the fabrication of graphene-based photocatalysts with high performance in the field of energy conversion.

摘要

高效的可见光驱动析氢在当前光催化研究中具有重要意义。在此,我们首次报道了一种新型石墨烯 - 半导体纳米复合材料的设计与合成,该复合材料由YInO₃纳米颗粒和二维石墨烯片组成,是一种在可见光照射下用于析氢的高效光催化剂。石墨烯/YInO₃纳米复合材料采用简便的溶剂热法合成,在该方法中,石墨烯的形成与YInO₃纳米颗粒在石墨烯片上的沉积可同时实现。作为助催化剂添加的石墨烯可将YInO₃的带隙缩小至可见光光子能量,并通过YInO₃与石墨烯之间的化学键延长电子 - 空穴对的分离和寿命。当石墨烯含量为0.5 wt%时,该纳米复合材料的光催化反应达到400.4 μmol h⁻¹ g⁻¹的高析氢速率,分别比纯YInO₃和Pt/YInO₃高出127倍和3.7倍。这项工作可为在能量转换领域制备高性能的石墨烯基光催化剂提供一种有效方法。

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