首页> 外文期刊>Journal of chemical theory and computation: JCTC >Redox Potentials from Ab Initio Molecular Dynamics and Explicit Entropy Calculations: Application to Transition Metals in Aqueous Solution
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Redox Potentials from Ab Initio Molecular Dynamics and Explicit Entropy Calculations: Application to Transition Metals in Aqueous Solution

机译:来自AB Initio分子动力学和显式熵计算的氧化还原电位:在水溶液中过渡金属的应用

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摘要

We present a complete methodology to consistently estimate redox potentials strictly from first-principles, without any experimental input. The methodology is based on (i) ab initio molecular dynamics (MD) simulations, (ii) all-atom explicit solvation, (iii) the two-phase thermodynamic (2PT) model, and (iv) the use of electrostatic potentials as references for the absolute electrochemical scale. We apply the approach presented to compute reduction potentials of the following redox couples: Cr2+/3+, V2+/3+, Ru(NH3)(6)(2+/3+), Sn2+/4+, Cu1+/2+, FcMeOH(0/1+), and Fe2+/3+ (in aqueous solution) and Fc(0/1+) (in acetonitrile). We argue that fully quantum-mechanical simulations are required to correctly model the intricate dynamical effects of the charged complexes on the surrounding solvent molecules within the solvation shell. Using the proposed methodology allows for a computationally efficient and statistically stable approach to compute free energy, differences, yielding excellent agreement between our computed redox potentials and the experimental references. The root-mean-square deviation with respect to experiment for the aqueous test set and the two exchange-correlation density functionals used, PBE and PBE with van der Waals corrections, are 0.659 and 0.457 V, respectively. At this level of theory, depending on the functional employed, its ability to correctly describe each particular molecular complex seems to be the factor limiting the accuracy of the calculations.
机译:我们提出了一个完整的方法,可以严格地从第一原理出发,在没有任何实验输入的情况下,始终如一地估算氧化还原电位。该方法基于(i)从头算分子动力学(MD)模拟,(ii)全原子显式溶剂化,(iii)两相热力学(2PT)模型,以及(iv)使用静电势作为绝对电化学标度的参考。我们应用提出的方法计算了以下氧化还原偶的还原电位:Cr2+/3+、V2+/3+、Ru(NH3)(6)(2+/3+、Sn2+/4+、Cu1+/2+、FcMeOH(0/1+)和Fe2+/3+(在水溶液中)和Fc(0/1+)(在乙腈中)。我们认为,要正确模拟带电络合物对溶剂化壳内周围溶剂分子的复杂动力学效应,需要进行完全的量子力学模拟。使用所提出的方法,可以得到一种计算效率高且统计稳定的方法来计算自由能、差异,从而在我们计算的氧化还原电位和实验参考之间产生极好的一致性。对于含水测试集和使用的两个交换相关密度泛函(PBE和带范德华校正的PBE),实验的均方根偏差分别为0.659和0.457 V。在这个理论层面上,根据所使用的泛函,它正确描述每个特定分子络合物的能力似乎是限制计算准确性的因素。

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