等离子体子
横截面
拉曼散射
拉曼光谱
材料科学
领域(数学)
等离子纳米粒子
分子物理学
单层
光学
光电子学
物理
纳米技术
数学
结构工程
工程类
纯数学
作者
Siyu Chen,Yuan‐Hui Xiao,Miao Qin,Guoliang Zhou,Ronglu Dong,Rajkumar Devasenathipathy,De‐Yin Wu,Liangbao Yang
标识
DOI:10.1021/acs.jpclett.2c03818
摘要
Quantifying the real plasmonic field strength experimentally has been long pursued in expanding the applications related to plasmonic enhancement. However, it is still an enormous challenge to determine the inhomogeneous plasmonic field distribution. Here, self-assembled monolayers (SAMs) of 4-mercaptobenzonitrile (MBN) are sandwiched as a gap spacer in a nanoparticle-on-mirror (NPoM) structure, effectively forming ultrahigh field enhancement to observe Stark shifts of the chemical bond. Transverse position-dependent Stark shifts of ν(C═C) and ν(C≡N) in the individual nanocavity measured by surface-enhanced Raman scattering (SERS) experiment combined with the Stark tuning rate by density functional theory (DFT) simulation accurately revealed the inhomogeneous plasmonic field transverse distribution and quantified the transverse plasmonic field strength up to ∼1.9 × 109 V/m, which matches the value predicted by finite element method (FEM) simulation. This work deepens the insight into plasmon-based technologies and will coordinate high-resolution techniques such as tip-enhanced Raman spectroscopy (TESR) to reveal the real plasmonic field distribution.
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