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4,4'-二巯基偶氮苯在金纳米间隙中的表面增强拉曼散射。

Surface-enhanced Raman scattering of 4,4'-dimercaptoazobenzene trapped in Au nanogaps.

机构信息

Department of Chemistry, Seoul National University, Seoul 151-742, Korea.

出版信息

Phys Chem Chem Phys. 2012 Mar 28;14(12):4095-100. doi: 10.1039/c2cp24135h. Epub 2012 Feb 14.

Abstract

The surface-enhanced Raman scattering (SERS) of 4,4'-dimercaptoazobenzene (4,4'-DMAB), an alpha, omega-dithiol possessing also an azo moiety, has seen a surge of interest recently, since 4,4'-DMAB might be able to form from 4-aminobenzenethiol (4-ABT) via a surface-induced photoreaction. An understanding of the intrinsic SERS characteristics of 4,4'-DMAB is thus very important to evaluate the possibility of such a photoreaction. We found in this work that 4,4'-DMAB should adsorb on a flame-annealed Au substrate via one of its two thiol groups such that Au nanoparticles could adsorb further on the pendent thiol group, forming a SERS hot site. The most distinctive feature in the SERS of 4,4'-DMAB was the appearance of a(g) bands, which were quite similar to the b(2)-type bands occurring in the SERS of 4-ABT. In an electrochemical environment, the a(g) bands of 4,4'-DMAB at 1431, 1387, and 1138 cm(-1) became weakened at lower potentials, completely disappearing at -1.0 V, but the bands were restored upon increasing the electrode potential, implying that neither electro- nor photo-chemical reaction to break the azo group took place, in agreement with data from a cyclic voltammogram. The appearance and disappearance of these a(g) bands are thus concluded to be associated with the charge transfer phenomenon: 4,4'-DMAB must then be one of a unique group of compounds exhibiting chemical enhancement when subjected to a SERS environment.

摘要

4,4'-二巯基偶氮苯(4,4'-DMAB)的表面增强拉曼散射(SERS)最近引起了人们的极大兴趣,因为4,4'-DMAB 可能能够通过表面诱导的光反应从 4-氨基苯硫酚(4-ABT)形成。因此,了解 4,4'-DMAB 的固有 SERS 特性对于评估这种光反应的可能性非常重要。我们在这项工作中发现,4,4'-DMAB 应该通过其两个硫醇基团之一吸附在火焰退火的 Au 基底上,使得 Au 纳米颗粒可以进一步吸附在悬垂的硫醇基团上,形成 SERS 热点。在 4,4'-DMAB 的 SERS 中最显著的特征是 a(g)带的出现,这与在 4-ABT 的 SERS 中发生的 b(2)-型带非常相似。在电化学环境中,4,4'-DMAB 的 a(g)带在 1431、1387 和 1138 cm(-1)处的强度在较低电位下减弱,在-1.0 V 时完全消失,但在增加电极电位时恢复,这表明既没有电化学反应也没有光化学反应发生,这与循环伏安图的数据一致。因此,这些 a(g)带的出现和消失被认为与电荷转移现象有关:4,4'-DMAB 必须是在 SERS 环境下表现出化学增强的独特化合物之一。

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