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

光催化 等离子体子 材料科学 载流子 纳米技术 表面改性 激发 光电子学 催化作用 化学工程 化学 物理 生物化学 工程类 量子力学
作者
Yoel Negrín‐Montecelo,Xiang‐Tian Kong,Lucas V. Besteiro,Enrique Carbó‐Argibay,Zhiming M. Wang,Moisés Pérez‐Lorenzo,Alexander O. Govorov,Miguel Comesaña‐Hermo,Miguel A. Correa‐Duarte
出处
期刊:ACS Applied Materials & Interfaces [American Chemical Society]
卷期号:14 (31): 35734-35744 被引量:6
标识
DOI:10.1021/acsami.2c08685
摘要

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.
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