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用于增强光催化的等离子体耦合结构

Plasmonic Coupling Architectures for Enhanced Photocatalysis.

作者信息

Liu Dong, Xue Can

机构信息

School of Materials Science and Engineering, Nanyang Technological University, 50 Nanyang Avenue, Singapore, 639798, Singapore.

出版信息

Adv Mater. 2021 Nov;33(46):e2005738. doi: 10.1002/adma.202005738. Epub 2021 Apr 23.

Abstract

Plasmonic photocatalysis is a promising approach for solar energy transformation. Comparing with isolated metal nanoparticles, the plasmonic coupling architectures can provide further strengthened local electromagnetic field and boosted light-harvesting capability through optimal control over the composition, spacing, and orientation of individual nanocomponents. As such, when integrated with semiconductor photocatalysts, the coupled metal nanostructures can dramatically promote exciton generation and separation through plasmonic-coupling-driven charge/energy transfer toward superior photocatalytic efficiencies. Herein, the principles of the plasmonic coupling effect are presented and recent progress on the construction of plasmonic coupling architectures and their integration with semiconductors for enhanced photocatalytic reactions is summarized. In addition, the remaining challenges as to the rational design and utilization of plasmon coupling structures are elaborated, and some prospects to inspire new opportunities on the future development of plasmonic coupling structures for efficient and sustainable light-driven reactions are raised.

摘要

表面等离子体光催化是一种很有前景的太阳能转换方法。与孤立的金属纳米颗粒相比,表面等离子体耦合结构可以通过对单个纳米组分的组成、间距和取向进行优化控制,提供进一步增强的局部电磁场和提高的光捕获能力。因此,当与半导体光催化剂集成时,耦合的金属纳米结构可以通过表面等离子体耦合驱动的电荷/能量转移,显著促进激子的产生和分离,从而实现更高的光催化效率。本文介绍了表面等离子体耦合效应的原理,总结了表面等离子体耦合结构的构建及其与半导体集成以增强光催化反应的研究进展。此外,阐述了表面等离子体耦合结构合理设计和利用方面仍然存在的挑战,并提出了一些展望,以激发表面等离子体耦合结构在高效可持续光驱动反应未来发展中的新机遇。

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