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等离子体光催化中载流子与能量转移过程的协同组合

Synergistic Combination of Charge Carriers and Energy-Transfer Processes in Plasmonic Photocatalysis.

作者信息

Negrín-Montecelo Yoel, Kong Xiang-Tian, Besteiro Lucas V, Carbó-Argibay Enrique, Wang Zhiming M, Pérez-Lorenzo Moisés, Govorov Alexander O, Comesaña-Hermo Miguel, Correa-Duarte Miguel A

机构信息

CINBIO, Universidade de Vigo, 36310 Vigo, Spain.

Galicia Sur Health Research Institute (IISGS), CIBERSAM, 36310 Vigo, Spain.

出版信息

ACS Appl Mater Interfaces. 2022 Aug 10;14(31):35734-35744. doi: 10.1021/acsami.2c08685. Epub 2022 Aug 1.

Abstract

Important efforts are currently under way in order to develop further the nascent field of plasmonic photocatalysis, striving for improved efficiencies and selectivities. A significant fraction of such efforts has been focused on distinguishing, understanding, and enhancing specific energy-transfer mechanisms from plasmonic nanostructures to their environment. Herein, we report a synthetic strategy that combines two of the main physical mechanisms driving plasmonic photocatalysis into an engineered system by rationally combining the photochemical features of energetic charge carriers and the electromagnetic field enhancement inherent to the plasmonic excitation. We do so by creating hybrid photocatalysts that integrate multiple plasmonic resonators in a single entity, controlling their joint contribution through spectral separation and differential surface functionalization. This strategy allows us to create complex hybrids with improved photosensitization capabilities, thanks to the synergistic combination of two photosensitization mechanisms. Our results show that the hot electron injection can be combined with an energy-transfer process mediated by the near-field interaction, leading to a significant increase in the final photocatalytic response of the material and moving the field of plasmonic photocatalysis closer to energy-efficient applications. Furthermore, our multimodal hybrids offer a test system to probe the properties of the two targeted mechanisms in energy-related applications such as the photocatalytic generation of hydrogen and open the door to wavelength-selective photocatalysis and novel tandem reactions.

摘要

目前正在做出重要努力,以进一步发展新兴的等离激元光催化领域,力求提高效率和选择性。这些努力中有很大一部分集中在区分、理解和增强从等离激元纳米结构到其周围环境的特定能量转移机制。在此,我们报告了一种合成策略,该策略通过合理结合高能电荷载流子的光化学特征和等离激元激发固有的电磁场增强,将驱动等离激元光催化的两种主要物理机制结合到一个工程系统中。我们通过创建在单个实体中集成多个等离激元谐振器的混合光催化剂来实现这一点,通过光谱分离和差异化表面功能化来控制它们的联合贡献。由于两种光敏化机制的协同组合,这种策略使我们能够创建具有改进光敏化能力的复杂混合物。我们的结果表明,热电子注入可以与由近场相互作用介导的能量转移过程相结合,从而导致材料的最终光催化响应显著增加,并使等离激元光催化领域更接近节能应用。此外,我们的多模态混合物提供了一个测试系统,用于探测能量相关应用(如光催化产氢)中两种目标机制的性质,并为波长选择性光催化和新型串联反应打开大门。

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