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A simple heuristic approach to estimate the thermochemistry of condensed-phase molecules based on the polarizable continuum model

机译:一种简单的启发式方法,以估计基于极化连续体模型的冷凝相分子热化学

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摘要

A simple model based on a quantum chemical approach with polarizable continuum models (PCMs) to provide reasonable translational and rotational entropies for liquid phase molecules was developed. A translational term was evaluated with free-volume compensation for the Sackur-Tetrode equation. We assumed that the free-volume corresponds to the cavity volume in the PCM. A rotational term was modeled as restricted rotation of a dipole in the electrostatic field. Entropies were assessed for twenty species in the liquid-phase using the proposed model, and the computed values were compared with experimental values. Quantum chemistry calculations were conducted at the omega B97X-D/6-311++G(d,p) level with the conductor-like PCM method. Predicted entropies were in good agreement with the experimental entropies, and the root mean square deviation was 17.2 J mol(-1) K-1. The standard enthalpy change of formation was then investigated for eleven specific species. The CBS-QB3//omega B97X-D method provides a reasonable standard enthalpy of formation for gasified species; however, improvement of the accuracy is required for liquid species. Finally, the dependence of the Gibbs energy on temperature was investigated for the eleven specific species. When the ideal gas treatment is used, the Gibbs energy trends for the gaseous and liquid phases are quasi-parallel for all of the species, although the Gibbs energy trends for liquids based on the proposed model intersected the gaseous trend (i.e. the intersection is the boiling point). However, the model significantly under or overestimated the experimental boiling points. The error of the boiling points was predominantly due to the inaccuracy of the enthalpy.
机译:一种简单的模型,基于Quantum Chemical方法(PCM),为提供合理的液相分子提供合理的平移和旋转熵。对Sackur-Tetrode方程的自由体积补偿评估了翻译术语。我们假设自由体积对应于PCM中的腔体积。旋转术语被建模为静电场中偶极物的限制旋转。使用所提出的模型在液相中评估二十种物种的熵,并将计算的值与实验值进行比较。用导体样PCM方法在ωB97X-D / 6-311 ++ G(D,P)水平上进行量子化学计算。预测的熵与实验熵吻合良好,根系平均方偏差为17.2J mol(-1)k-1。然后研究了11种特异性物种的形成标准焓变化。 CBS-QB3 // Omega B97X-D方法提供了一种可接气物种形成的合理标准焓;然而,液体物种需要提高准确性。最后,对11个特异性物种研究了GIBBS能量对温度的依赖性。当使用理想的气体处理时,气态和液相的Gibbs能量趋势对于所有物种来说是准矛盾的,尽管基于所提出的模型的液体的GIBBS能量趋势相交(即交叉点是沸点)。然而,该模型显着下降或高估了实验沸点。沸点的错误主要是由于焓的不准确性。

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