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具有铋助催化剂的肖特基结用于调控水相氮还原以增强太阳能制氨

Schottky Junctions with Bi Cocatalyst for Taming Aqueous Phase N Reduction toward Enhanced Solar Ammonia Production.

作者信息

Huang Yewei, Zhu Yisong, Chen Shuijiao, Xie Xiuqiang, Wu Zhenjun, Zhang Nan

机构信息

College of Materials Science and Engineering Hunan University Changsha 410082 P. R. China.

College of Chemistry and Chemical Engineering Hunan University Changsha 410082 P. R. China.

出版信息

Adv Sci (Weinh). 2021 Jan 31;8(6):2003626. doi: 10.1002/advs.202003626. eCollection 2021 Mar.

Abstract

Solar-powered N reduction in aqueous solution is becoming a research hotspot for ammonia production. Schottky junctions at the metal/semiconductor interface have been effective to build up a one-way channel for the delivery of photogenerated electrons toward photoredox reactions. However, their applications for enhancing the aqueous phase reduction of N to ammonia have been bottlenecked by the difficulty of N activation and the competing H evolution reaction (HER) at the metal surface. Herein, the application of Bi with low HER activity as a robust cocatalyst for constructing Schottky-junction photocatalysts toward N reduction to ammonia is reported. The introduction of Bi not only boosts the interfacial electron transfer from excited photocatalysts due to the built-in Schottky-junction effect at the Bi/semiconductor interface but also synchronously facilitates the on-site N adsorption and activation toward solar ammonia production. The unidirectional charge transfer to the active site of Bi significantly promotes the photocatalytic N-to-ammonia conversion efficiency by 65 times for BiOBr. In addition, utilizing Bi to enhance the photocatalytic ammonia production can be extended to other semiconductor systems. This work is expected to unlock the promise of engineering Schottky junctions toward high-efficiency solar N-to-ammonia conversion in aqueous phase.

摘要

水溶液中太阳能驱动的氮还原正成为氨生产的研究热点。金属/半导体界面处的肖特基结已有效地构建了一个单向通道,用于将光生电子输送到光氧化还原反应中。然而,它们在增强氮在水相中还原为氨方面的应用受到氮活化困难以及金属表面竞争性析氢反应(HER)的限制。在此,报道了具有低HER活性的铋作为一种强大的助催化剂,用于构建用于氮还原为氨的肖特基结光催化剂。铋的引入不仅由于铋/半导体界面处的内置肖特基结效应促进了激发光催化剂的界面电子转移,还同步促进了现场氮吸附和活化以用于太阳能制氨。向铋活性位点的单向电荷转移显著提高了BiOBr光催化氮到氨的转化效率65倍。此外,利用铋增强光催化氨生产可扩展到其他半导体系统。这项工作有望开启通过工程肖特基结实现水相中高效太阳能氮到氨转化的前景。

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