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Photochemical Oxidative Growth of Iridium Oxide Nanoparticles on CdSe@CdS Nanorods
Published on: February 11, 2016
Controlled Photocatalytic Reduction of CO2 by Precise Atomic-Level Interface Modification and Engineering of Silver
Hangmin Xu1, Xiang Liu1, Ganghua Zhou1
1School of Mechanical Engineering, College of Environmental Science and Engineering, Yangzhou University, Yangzhou, 225009, P. R. China.
Abstract:
The emission of carbon dioxide (CO2) and other greenhouse gases has raised serious environmental concerns, and artificial photosynthesis is a promising approach to reducing the carbon footprint. The primary challenge for photocatalytic systems is how to optimally separate interfacial charges, while the hydrogen evolution reaction limits the selectivity of products in the photocatalytic reduction of CO2. Herein, highly stable Ag44 nanoclusters (Ag44 NCs) protected by thiol salt ligands are prepared with atomic-level precision. The ultra-small Ag44 NCs shorten the distance for electrons to migrate from the bulk phase to the surface and accelerate interfacial charge transfer. Furthermore, the molecule-like properties of Ag44 NCs broaden the light absorption range of the semiconducting substrate, and quantum confinement rendered by Ag44 NCs produces a potential well, which promotes electron aggregation and generates a long-range ordered electric field to transfer electrons directionally. Since the electrostatic repulsion of positively charged Ag44 NCs hinders electron transfer and proton coupling, the hydrogen evolution reaction is inhibited.
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