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A Polarizable QM/MM Explicit Solvent Model for Computational Electrochemistry in Water

机译:用于水中计算电化学的可极化QM / MM显式溶剂模型

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We present a quantum mechanical/molecular mechanical (QM/MM) explicit solvent model for the computation of standard reduction potentials E0. The QM/MM model uses density functional theory (DFT) to model the solute and a polarizable molecular mechanics (MM) force field to describe the solvent. The linear response approximation is applied to estimate E0 from the thermally averaged electron attachment/detachment energies computed in the oxidized and reduced states. Using the QM/MM model, we calculated one-electron E0 values for several aqueous transition-metal complexes and found substantially improved agreement with experiment compared to values obtained from implicit solvent models. A detailed breakdown of the physical effects in the QM/MM model indicates that hydrogen-bonding effects are mainly responsible for the differences in computed values of E0 between the QM/MM and implicit models. Our results highlight the importance of including solute—solvent hydrogen-bonding effects in the theoretical modeling of redox processes.
机译:我们提出了用于计算标准还原电位E0的量子力学/分子力学(QM / MM)显式溶剂模型。 QM / MM模型使用密度泛函理论(DFT)对溶质进行建模,并使用可极化分子力学(MM)力场来描述溶剂。应用线性响应近似值,以从在氧化态和还原态下计算出的热平均电子附着/脱离能估算E0。使用QM / MM模型,我们计算了几种水性过渡金属配合物的单电子E0值,与从隐式溶剂模型中获得的值相比,与实验相比,发现实质上改善了一致性。对QM / MM模型中物理效应的详细分类表明,氢键效应是QM / MM模型与隐式模型之间E0计算值差异的主要原因。我们的结果突出了在氧化还原过程的理论模型中包括溶质-溶剂氢键效应的重要性。

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