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使用原子动力学-量子力学模型模拟表面增强超拉曼散射

Simulating Surface-Enhanced Hyper-Raman Scattering Using Atomistic Electrodynamics-Quantum Mechanical Models.

作者信息

Hu Zhongwei, Chulhai Dhabih V, Jensen Lasse

机构信息

Department of Chemistry, The Pennsylvania State University , 104 Chemistry Building, University Park, 16802, United States.

出版信息

J Chem Theory Comput. 2016 Dec 13;12(12):5968-5978. doi: 10.1021/acs.jctc.6b00940. Epub 2016 Nov 7.

Abstract

Surface-enhanced hyper-Raman scattering (SEHRS) is the two-photon analogue of surface-enhanced Raman scattering (SERS), which has proven to be a powerful tool to study molecular structures and surface enhancements. However, few theoretical approaches to SEHRS exist and most neglect the atomistic descriptions of the metal surface and molecular resonance effects. In this work, we present two atomistic electrodynamics-quantum mechanical models to simulate SEHRS. The first is the discrete interaction model/quantum mechanical (DIM/QM) model, which combines an atomistic electrodynamics model of the nanoparticle with a time-dependent density functional theory description of the molecule. The second model is a dressed-tensors method that describes the molecule as a point-dipole and point-quadrupole object interacting with the enhanced local field and field-gradients (FG) from the nanoparticle. In both of these models, the resonance effects are treated efficiently by means of damped quadratic response theory. Using these methods, we simulate SEHRS spectra for benzene and pyridine. Our results show that the FG effects in SEHRS play an important role in determining both the surface selection rules and the enhancements. We find that FG effects are more important in SEHRS than in SERS. We also show that the spectral features of small molecules can be accurately described by accounting for the interactions between the molecule and the local field and FG of the nanoparticle. However, at short distances between the metal and molecule, we find significant differences in the SEHRS enhancements predicted using the DIM/QM and the dressed-tensors methods.

摘要

表面增强超拉曼散射(SEHRS)是表面增强拉曼散射(SERS)的双光子类似物,后者已被证明是研究分子结构和表面增强的有力工具。然而,关于SEHRS的理论方法很少,并且大多数方法忽略了金属表面的原子描述和分子共振效应。在这项工作中,我们提出了两个原子级的电动力学-量子力学模型来模拟SEHRS。第一个是离散相互作用模型/量子力学(DIM/QM)模型,它将纳米粒子的原子级电动力学模型与分子的含时密度泛函理论描述相结合。第二个模型是一种修饰张量方法,它将分子描述为与纳米粒子增强的局部场和场梯度(FG)相互作用的点偶极子和点四极子对象。在这两个模型中,共振效应均通过阻尼二次响应理论得到有效处理。使用这些方法,我们模拟了苯和吡啶的SEHRS光谱。我们的结果表明,SEHRS中的FG效应在确定表面选择规则和增强方面都起着重要作用。我们发现FG效应在SEHRS中比在SERS中更重要。我们还表明,通过考虑分子与纳米粒子的局部场和FG之间的相互作用,可以准确描述小分子的光谱特征。然而,在金属与分子之间的距离较短时,我们发现使用DIM/QM和修饰张量方法预测的SEHRS增强存在显著差异。

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