光催化
催化作用
等离子体子
材料科学
纳米技术
纳米颗粒
化学能
等离子纳米粒子
热点(地质)
化学工程
光电子学
化学
有机化学
物理
地球物理学
工程类
作者
Carice Chong,Siew Kheng Boong,Tharishinny Raja Mogan,Jinn‐Kye Lee,Zhi Zhong Ang,Haitao Li,Hiang Kwee Lee
出处
期刊:Small
[Wiley]
日期:2024-01-04
卷期号:20 (24)
被引量:3
标识
DOI:10.1002/smll.202309983
摘要
Abstract Plasmon‐mediated catalysis utilizing hybrid photocatalytic ensembles promises effective light‐to‐chemical transformation, but current approaches suffer from weak electromagnetic field enhancements from polycrystalline and isotropic plasmonic nanoparticles as well as poor utilization of precious co‐catalyst. Here, efficient plasmon‐mediated catalysis is achieved by introducing a unique catalyst‐on‐hotspot nanoarchitecture obtained through the strategic positioning of co‐photocatalyst onto plasmonic hotspots to concentrate light energy directly at the point‐of‐reaction. Using environmental remediation as a proof‐of‐concept application, the catalyst‐on‐hotspot design (edge‐AgOcta@Cu 2 O) enhances photocatalytic advanced oxidation processes to achieve superior organic‐pollutant degradation at ≈81% albeit having lesser Cu 2 O co‐photocatalyst than the fully deposited design (full‐AgOcta@Cu 2 O). Mass‐normalized rate constants of edge‐AgOcta@Cu 2 O reveal up to 20‐fold and 3‐fold more efficient utilization of Cu 2 O and Ag nanoparticles, respectively, compared to full‐AgOcta@Cu 2 O and standalone catalysts. Moreover, this design also exhibits catalytic performance >4‐fold better than emerging hybrid photocatalytic platforms. Mechanistic studies unveil that the light‐concentrating effect facilitated by the dense electromagnetic hotspots is crucial to promote the generation and utilization of energetic photocarriers for enhanced catalysis. By enabling the plasmonic focusing of light onto co‐photocatalyst at the single‐particle level, the unprecedented design offers valuable insights in enhancing light‐driven chemical reactions and realizing efficient energy/catalyst utilizations for diverse chemical, environmental, and energy applications.
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