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首页> 外文期刊>Journal of Physics. Condensed Matter >Density functional theory-based simulations of sum frequency generation spectra involving methyl stretching vibrations: Effect of the molecular model on the deduced molecular orientation and comparison with an analytical approach
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Density functional theory-based simulations of sum frequency generation spectra involving methyl stretching vibrations: Effect of the molecular model on the deduced molecular orientation and comparison with an analytical approach

机译:基于密度泛函理论的涉及甲基拉伸振动的总频率生成谱的模拟:分子模型对推导的分子取向的影响以及与分析方法的比较

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The knowledge of the first hyperpolarizability tensor elements of molecular groups is crucial for a quantitative interpretation of the sum frequency generation (SFG) activity of thin organic films at interfaces. Here, the SFG response of the terminal methyl group of a dodecanethiol (DDT) monolayer has been interpreted on the basis of calculations performed at the density functional theory (DFT) level of approximation. In particular, DFT calculations have been carried out on three classes of models for the aliphatic chains. The first class of models consists of aliphatic chains, containing from 3 to 12 carbon atoms, in which only one methyl group can freely vibrate, while the rest of the chain is frozen by a strong overweight of its C and H atoms. This enables us to localize the probed vibrational modes on the methyl group. In the second class, only one methyl group is frozen, while the entire remaining chain is allowed to vibrate. This enables us to analyse the influence of the aliphatic chain on the methyl stretching vibrations. Finally, the dodecanethiol (DDT) molecule is considered, for which the effects of two dielectrics, i.e.n-hexane and n-dodecane, are investigated. Moreover, DDT calculations are also carried out by using different exchangecorrelation (XC) functionals in order to assess the DFT approximations. Using the DFT IR vectors and Raman tensors, the SFG spectrum of DDT has been simulated and the orientation of the methyl group has then been deduced and compared with that obtained using an analytical approach based on a bond additivity model. This analysis shows that when using DFT molecular properties, the predicted orientation of the terminal methyl group tends to converge as a function of the alkyl chain length and that the effects of the chain as well as of the dielectric environment are small. Instead, a more significant difference is observed when comparing the DFT-based results with those obtained from the analytical approach, thus indicating the importance of a quantum chemical description of the hyperpolarizability tensor elements of the methyl group.
机译:分子基团的第一个超极化张量元素的知识对于有机薄膜在界面处的总频率生成(SFG)活性的定量解释至关重要。在此,已经基于在密度泛函理论(DFT)近似水平下进行的计算来解释了十二烷硫醇(DDT)单层末端甲基的SFG响应。特别地,已经在针对脂族链的三类模型上进行了DFT计算。第一类模型由含有3至12个碳原子的脂族链组成,其中只有一个甲基可以自由振动,而链的其余部分因其C和H原子超重而冻结。这使我们能够将探测到的振动模式定位在甲基上。在第二类中,仅一个甲基被冷冻,而整个剩余链被允许振动。这使我们能够分析脂族链对甲基拉伸振动的影响。最后,考虑十二烷硫醇(DDT)分子,为此研究了两种电介质即正己烷和正十二烷的影响。此外,还通过使用不同的交换相关(XC)功能来进行DDT计算,以评估DFT近似值。使用DFT IR向量和拉曼张量,模拟了DDT的SFG光谱,然后推导了甲基的方向,并将其与使用基于键加性模型的分析方法获得的方向进行了比较。该分析表明,当使用DFT分子特性时,末端甲基的预测取向趋向于根据烷基链长收敛,并且链的影响以及介电环境的影响很小。相反,当将基于DFT的结果与从分析方法获得的结果进行比较时,观察到了更显着的差异,从而表明了对甲基的超极化性张量元素进行量子化学描述的重要性。

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