电场
化学
惰性
化学物理
等离子体子
轨道能级差
光化学
化学键
密度泛函理论
催化作用
纳米颗粒
拉曼光谱
本地字段
电子
分子物理学
领域(数学)
原子物理学
纳米技术
活化能
计算化学
光谱学
债券定单
电子结构
惰性气体
化学反应
离域电子
作者
Yueyue Dong,Cenfeng Fu,Hailong Xiong,Linlin Chen,Qianqi Shi,Canyu Hu,Yingpu Bi,Ran Long,Yujie Xiong
摘要
Abstract Plasmonic catalysis offers a promising route to solar-driven chemical transformations, yet its efficiency is severely limited by the high energy barrier for hot electron utilization, particularly for activating inert bonds. While recent progress suggests that the plasmonic local electric field can synergize with hot carriers to enhance reactivity, the specific contribution of the local electric field to bond activation remains unclear. Herein, we observed the visible-light-driven cleavage of the C–F bond under the intense local electric field of the Ag interparticle gaps via in situ surface-enhanced Raman spectroscopy (SERS). The relationship between nanoparticle size-dependent local electric field enhancement/hot carrier generation efficiency and C–F bond cleavage kinetics demonstrates that the local electric field can effectively lower the energy barrier for hot electron injection into adsorbate’s lowest unoccupied molecular orbital (LUMO). Density functional theory (DFT) calculations further suggest that the contribution of the local electric field (CF) to the barrier reduction is at least 25% under our experimental conditions by lowering the adsorbate LUMO level. These insights deepen the mechanistic understanding of plasmonic catalysis, such as the superlinear dependence of the reaction rate on light intensity, presenting the local electric field as a critical design parameter for high-efficiency plasmonic catalysts targeting inert chemical bond activation.
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