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通过添加金属离子作为通用界面调节剂来提高石墨烯-半导体复合材料的光活性。

Toward improving the graphene-semiconductor composite photoactivity via the addition of metal ions as generic interfacial mediator.

机构信息

State Key Laboratory Breeding Base of Photocatalysis, College of Chemistry and Chemical Engineering, Fuzhou University , Fuzhou 350002, People's Republic of China.

出版信息

ACS Nano. 2014 Jan 28;8(1):623-33. doi: 10.1021/nn405242t. Epub 2013 Dec 10.

Abstract

We report a simple and general approach to improve the transfer efficiency of photogenerated charge carriers across the interface between graphene (GR) and semiconductor CdS by introducing a small amount of metal ions (Ca(2+), Cr(3+), Mn(2+), Fe(2+), Co(2+), Ni(2+), Cu(2+), and Zn(2+)) as "mediator" into their interfacial layer matrix, while the intimate interfacial contact between GR and CdS is maintained. This simple strategy can not only significantly improve the visible-light-driven photoactivity of GR-CdS semiconductor composites for targeting selective photoredox reaction, including aerobic oxidation of alcohol and anaerobic reduction of nitro compound, but also drive a balance between the positive effect of GR on retarding the recombination of electron-hole pairs photogenerated from semiconductor and the negative "shielding effect" of GR resulting from the high weight addition of GR. Our current work highlights that the significant issue on improving the photoactivity of GR-semiconductor composites via strengthening interfacial contact is not just a simple issue of tighter connection between GR and the semiconductor, but it is also the optimization of the atomic charge carrier transfer pathway across the interface between GR and the semiconductor.

摘要

我们报告了一种简单而通用的方法,通过在石墨烯(GR)和半导体 CdS 的界面层基质中引入少量金属离子(Ca(2+)、Cr(3+)、Mn(2+)、Fe(2+)、Co(2+)、Ni(2+)、Cu(2+)和 Zn(2+))作为“媒介”,来提高光生载流子在 GR 和半导体 CdS 之间界面的转移效率,同时保持 GR 和 CdS 之间的紧密界面接触。这种简单的策略不仅可以显著提高 GR-CdS 半导体复合材料在光选择性氧化还原反应(包括醇的有氧氧化和硝基化合物的无氧还原)中的可见光驱动光活性,还可以平衡 GR 对抑制半导体光生电子-空穴对复合的积极作用和 GR 高重量添加导致的“屏蔽效应”的负面影响。我们的工作强调了通过加强界面接触来提高 GR-半导体复合材料光活性的重要问题,不仅是 GR 与半导体之间更紧密连接的简单问题,而且还优化了 GR 和半导体之间界面载流子转移途径的原子电荷。

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