Control of Chemical Reaction Pathways by Light-Matter Coupling.

IF 11.7 1区 化学 Q1 CHEMISTRY, PHYSICAL
Dinumol Devasia, Ankita Das, Varun Mohan, Prashant K Jain
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引用次数: 23

Abstract

Because plasmonic metal nanostructures combine strong light absorption with catalytically active surfaces, they have become platforms for the light-assisted catalysis of chemical reactions. The enhancement of reaction rates by plasmonic excitation has been extensively discussed. This review focuses on a less discussed aspect: the induction of new reaction pathways by light excitation. Through commentary on seminal reports, we describe the principles behind the optical modulation of chemical reactivity and selectivity on plasmonic metal nanostructures. Central to these phenomena are excited charge carriers generated by plasmonic excitation, which modify the energy landscape available to surface reactive species and unlock pathways not conventionally available in thermal catalysis. Photogenerated carriers can trigger bond dissociation or desorption in an adsorbate-selective manner, drive charge transfer and multielectron redox reactions, and generate radical intermediates. Through one or more of these mechanisms, a specific pathway becomes favored under light. By improved control over these mechanisms, light-assisted catalysis can be transformational for chemical synthesis and energy conversion.

光-物质耦合对化学反应途径的控制。
由于等离子体金属纳米结构结合了强光吸收和催化活性表面,它们已经成为光辅助催化化学反应的平台。等离子体激发对反应速率的提高已经得到了广泛的讨论。本文综述了一个较少讨论的方面:光激发诱导新的反应途径。通过对开创性报告的评论,我们描述了等离子体金属纳米结构的化学反应性和选择性的光学调制背后的原理。这些现象的核心是由等离子体激发产生的激发态载流子,它改变了表面反应物质可用的能量格局,并解锁了热催化中传统上不可用的途径。光生载体可以以吸附选择性的方式触发键解离或解吸,驱动电荷转移和多电子氧化还原反应,并产生自由基中间体。通过这些机制中的一种或多种,特定的途径在光线下变得有利。通过改进对这些机制的控制,光辅助催化可以转化为化学合成和能量转换。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
28.00
自引率
0.00%
发文量
21
期刊介绍: The Annual Review of Physical Chemistry has been published since 1950 and is a comprehensive resource for significant advancements in the field. It encompasses various sub-disciplines such as biophysical chemistry, chemical kinetics, colloids, electrochemistry, geochemistry and cosmochemistry, chemistry of the atmosphere and climate, laser chemistry and ultrafast processes, the liquid state, magnetic resonance, physical organic chemistry, polymers and macromolecules, and others.
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