化学
催化作用
光化学
反键分子轨道
等离子体子
离解(化学)
氧化还原
反应速率
化学工程
纳米技术
材料科学
原子轨道
无机化学
光电子学
物理化学
有机化学
电子
工程类
物理
量子力学
作者
Phillip Christopher,Hongliang Xin,Suljo Linic
出处
期刊:Nature Chemistry
[Springer Nature]
日期:2011-04-28
卷期号:3 (6): 467-472
被引量:1785
摘要
Catalysis plays a critical role in chemical conversion, energy production and pollution mitigation. High activation barriers associated with rate-limiting elementary steps require most commercial heterogeneous catalytic reactions to be run at relatively high temperatures, which compromises energy efficiency and the long-term stability of the catalyst. Here we show that plasmonic nanostructures of silver can concurrently use low-intensity visible light (on the order of solar intensity) and thermal energy to drive catalytic oxidation reactions--such as ethylene epoxidation, CO oxidation, and NH₃ oxidation--at lower temperatures than their conventional counterparts that use only thermal stimulus. Based on kinetic isotope experiments and density functional calculations, we postulate that excited plasmons on the silver surface act to populate O₂ antibonding orbitals and so form a transient negative-ion state, which thereby facilitates the rate-limiting O₂-dissociation reaction. The results could assist the design of catalytic processes that are more energy efficient and robust than current processes.
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