论文标题

通过耦合电子和分子密度理论来应对溶剂效应

Tackling solvent effect by coupling electronic and molecular Density Functional Theory

论文作者

Jeanmairet, Guillaume, Levesque, Maximilien, Borgis, Daniel

论文摘要

溶剂化作用可能会对化学反应产生巨大影响。但是,精确的量子化学计算最常在真空中忽略溶剂的作用或使用连续溶剂模型而忽略其分子性质。我们提出了一种新方法,使用电子密度功能理论以及使用分子密度函数理论对溶剂进行经典的大型典型处理,耦合溶质的量子描述。与以前的工作不同,这两个密度都始终如一地最小化,这考虑了分子溶剂和溶质的相互极化。使用溶质而不是拟合点电荷的全电子密度来考虑静电相互作用。引入的方法是在量子计算中解决溶剂化效应的两种主要策略之间的良好折衷。它在计算上比直接量子力学/分子力学耦合更有效,需要探索许多溶剂构型。与连续方法相比,它保留了溶剂的完整分子水平描述。我们将这个新框架验证为两个常规的基准系统:一种在水中溶剂化的水以及氯甲烷和水中氯化物之间的对称亲核取代。与实验数据相比,自由能曲线的预测尚未完全定量,但最重要的特征是定性恢复的。该方法提供了溶剂结构沿反应途径的演变的详细分子图。

Solvation effect might have a tremendous influence on chemical reactions. However, precise quantum chemistry calculations are most often done either in vacuum neglecting the role of the solvent or using continuum solvent model ignoring its molecular nature. We propose a new method coupling a quantum description of the solute using electronic density functional theory with a classical grand-canonical treatment of the solvent using molecular density functional theory. Unlike previous work, both densities are minimized self consistently, accounting for mutual polarization of the molecular solvent and the solute. The electrostatic interaction is accounted using the full electron density of the solute rather than fitted point charges. The introduced methodology represents a good compromise between the two main strategies to tackle solvation effect in quantum calculation. It is computationally more effective than a direct quantum-mechanics/molecular mechanics coupling, requiring the exploration of many solvent configurations. Compared to continuum methods it retains the full molecular-level description of the solvent. We validate this new framework onto two usual benchmark systems: a water solvated in water and the symmetrical nucleophilic substitution between chloromethane and chloride in water. The prediction for the free energy profiles are not yet fully quantitative compared to experimental data but the most important features are qualitatively recovered. The method provides a detailed molecular picture of the evolution of the solvent structure along the reaction pathway.

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