化学
埃
等离子体子
电解质
化学物理
溢出效应
电子
拉曼光谱
极化(电化学)
金属
电化学
单层
纳米尺度
分子物理学
纳米技术
光谱学
光电发射光谱学
过渡金属
超晶格
凝聚态物理
自组装单层膜
分辨率(逻辑)
表面等离子体子
吸附
电子光谱学
原子单位
光离子化
表面增强拉曼光谱
价电子
原子物理学
吸收光谱法
分子
电极
作者
Jun Yi,Yue‐Jiao Zhang,Yifan Huang,Junrong Zheng,En‐Ming You,Xiang Wang,Lu Wei,Petar M. Radjenovic,Meng Zhang,Sai Duan,Jianfeng Li,Bing‐Wei Mao,De‐Yin Wu,Bin Ren,Wolfgang Schmickler,Alexei A. Kornyshev,Xin Xu,Xiang Zhang,Zhong‐Qun Tian
摘要
The behaviors of solid-liquid interfacial electron spillovers under negative potentials are crucial for understanding heterogeneous reactions and catalysts. The missing experimental details at the angstrom scale leave the current understanding of interfacial electron spillovers largely conceptual. Herein, we demonstrated interfacial electron spillover at electrode-electrolyte interfaces by combining in situ electrochemical plasmon-enhanced Raman spectroscopy (PERS) with a plasmonic molecular ruler strategy. Using a series of molecules adsorbed on or proximate to metallic electrodes (Pt, Pd, Au, and Ag) as molecular rulers, the electron spillover from electrodes to electrolytes was experimentally and theoretically correlated to the PERS bands of the functional groups of rulers, which provided a spatial resolution down to the angstrom scale. The electron spillover length was highly dependent on the potentials, metals, and electrolytes. An electron spillover with a length of up to 4 Å was observed at the Ag electrode-organic electrolyte interface. These results provide quantitative measurements of the fundamental details of electronic behaviors in metal-liquid interfaces, which may guide efforts to tailor the physical and chemical properties of metals under electrochemical polarization and prospectively enable active control of quantum plasmonics for angstrom-scale interfacial sensing.
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