首页> 外文期刊>The Journal of Chemical Physics >Raman scattering of 4-aminobenzenethiol sandwiched between Ag nanoparticle and macroscopically smooth Au substrate: Effects of size of Ag nanoparticles and the excitation wavelength
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Raman scattering of 4-aminobenzenethiol sandwiched between Ag nanoparticle and macroscopically smooth Au substrate: Effects of size of Ag nanoparticles and the excitation wavelength

机译:夹在Ag纳米颗粒和宏观光滑的Au基底之间的4-氨基苯硫酚的拉曼散射:Ag纳米颗粒的大小和激发波长的影响

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摘要

A nanogap formed by a metal nanoparticle and a flat metal substrate is one kind of hot site for surface-enhanced Raman scattering (SERS). Accordingly, although no Raman signal is observable when 4-aminobenzenethiol (4-ABT), for instance, is self-assembled on a flat Au substrate, a distinct spectrum is obtained when Ag or Au nanoparticles are adsorbed on the pendent amine groups of 4-ABT. This is definitely due to the electromagnetic coupling between the localized surface plasmon of Ag or Au nanoparticle with the surface plasmon polariton of the planar Au substrate, allowing an intense electric field to be induced in the gap even by visible light. To appreciate the Raman scattering enhancement and also to seek the optimal condition for SERS at the nanogap, we have thoroughly examined the size effect of Ag nanoparticles, along with the excitation wavelength dependence, by assembling 4-ABT between planar Au and a variable-size Ag nanoparticle (from 20- to 80-nm in diameter). Regarding the size dependence, a higher Raman signal was observed when larger Ag nanoparticles were attached onto 4-ABT, irrespective of the excitation wavelength. Regarding the excitation wavelength, the highest Raman signal was measured at 568nm excitation, slightly larger than that at 632.8nm excitation. The Raman signal measured at 514.5 and 488nm excitation was an order of magnitude weaker than that at 568nm excitation, in agreement with the finite-difference time domain simulation. It is noteworthy that placing an Au nanoparticle on 4-ABT, instead of an Ag nanoparticle, the enhancement at the 568nm excitation was several tens of times weaker than that at the 632.8nm excitation, suggesting the importance of the localized surface plasmon resonance of the Ag nanoparticles for an effective coupling with the surface plasmon polariton of the planar Au substrate to induce a very intense electric field at the nanogap.
机译:由金属纳米粒子和平坦的金属基底形成的纳米间隙是表面增强拉曼散射(SERS)的一种热点。因此,尽管当例如4-氨基苯硫醇(4-ABT)在平坦的Au底物上自组装时没有观察到拉曼信号,但是当Ag或Au纳米粒子被吸附在4的侧基上时,可获得不同的光谱。 -ABT。这肯定是由于Ag或Au纳米粒子的局部表面等离子体激元与平面Au基板的表面等离子体激元之间的电磁耦合,即使在可见光的作用下,也能在间隙中感应出强电场。为了欣赏拉曼散射的增强并在纳米间隙处寻找SERS的最佳条件,我们通过在平面Au和可变尺寸之间组装4-ABT彻底研究了Ag纳米颗粒的尺寸效应以及激发波长的依赖性。银纳米粒子(直径为20-80纳米)。关于尺寸依赖性,当较大的Ag纳米颗粒附着在4-ABT上时,观察到较高的拉曼信号,而与激发波长无关。关于激发波长,在568nm激发下测得的最高拉曼信号略大于在632.8nm激发下的拉曼信号。与有限差分时域模拟相一致,在514.5和488nm激发下测得的拉曼信号比在568nm激发下测得的拉曼信号弱一个数量级。值得注意的是,将Au纳米粒子而不是Ag纳米粒子放置在4-ABT上,在568nm激发下的增强作用比在632.8nm激发下的增强作用弱几十倍,这提示了纳米粒子的局部表面等离子体激元共振的重要性。 Ag纳米颗粒可与平面Au基底的表面等离振子极化有效耦合,从而在纳米间隙处引发非常强的电场。

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