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Frequency-dependent Local Field Factors in Dielectric Liquids by a Polarizable Force Field and Molecular Dynamics Simulations

机译:通过可极化力场和分子动力学模拟介电液体中的频率依赖局部场因子

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A force field model for calculating local field factors, i.e. the linear response of the local electric field for example at a nucleus in a molecule with respect to an applied electric field, is discussed. It is based on a combined charge-transfer and point-dipole interaction model for the polarizability, and thereby it includes two physically distinct terms for describing electronic polarization: changes in atomic charges arising from transfer of charge between the atoms and atomic induced dipole moments. A time dependence is included both for the atomic charges and the atomic dipole moments and if they are assumed to oscillate with the same frequency as the applied electric field, a model for frequency-dependent properties are obtained. Furthermore, if a life-time of excited states are included, a model for the complex frequency-dependent polariability is obtained including also information about excited states and the absorption spectrum. We thus present a model for the frequency-dependent local field factors through the first molecular excitation energy. It is combined with molecular dynamics simulations of liquids where a large set of configurations are sampled and for which local field factors are calculated. We are normally not interested in the average of the local field factor but rather in configurations where it is as high as possible. In electrical insulation, we would like to avoid high local field factors to reduce the risk for electrical breakdown, whereas for example in surface-enhanced Raman spectroscopy, high local field factors are desired to give dramatically increased intensities.
机译:讨论了一种用于计算局部场因子的力场模型,即局部电场的局部电场的线性响应,例如在施加电场的分子中的核。它基于组合电荷 - 转移和点偶极相互作用模型,其可极化性,从而包括两个物理上不同的描述用于描述电子极化的术语:从原子和原子诱导的偶极矩之间的电荷转移产生的原子电荷的变化。依赖于原子电荷和原子偶极矩,并且假设用与所施加的电场相同的频率振荡,获得用于跨函数属性的模型。此外,如果包括激发状态的寿命,则获得复杂函数依赖性的模型,包括关于激发状态和吸收光谱的信息。因此,我们通过第一分子激发能量为频率依赖局部场因子提供模型。它与液体的分子动力学模拟相结合,其中采样大量配置,并计算局部场因子。我们通常对本地现场因素的平均值不感兴趣,而是在它尽可能高的配置中。在电绝缘中,我们希望避免高地的局部场因因素来降低电击的风险,而例如在表面增强的拉曼光谱中,期望高局部场因子急剧增加的强度。

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