苯甲醇阳极电解的ECE与DISP机制:微观速率常数的计算预测

IF 3.2 3区 化学 Q2 CHEMISTRY, PHYSICAL
John H. Hymel,  and , Jesse G. McDaniel*, 
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引用次数: 0

摘要

与相应的均相氧化/还原反应相比,电化学反应的非均相性质需要对产物产率/选择性进行独特的动力学控制。在直接电解中,初始电子转移之后的后续基本步骤也可能在电极表面不均匀地发生,或在散装电解质中均匀地发生,通常通过二次电子转移的歧化步骤;由于活性自由基中间体寿命的差异,这种分支的动力学控制可能对产物选择性/产率有重要影响。在这项工作中,我们使用计算机模拟来预测在含水电解质中的工作碳阳极上对甲氧基苄基醇非均相“ECE”电化学氧化成相应醛的微观速率常数。在近似控制电位电解的条件下,进行了分子动力学模拟,以原子分辨率模拟整个电化学电池,并通过直接动力学和自由能采样方法的结合来预测速率常数。基于密度泛函理论的量子力学/分子力学(DFT-QM/MM)模拟预测了电双层环境中阳离子自由基中间体去质子化的自由能垒。我们证明了强的疏溶剂力如何导致电生成的阳离子自由基中间体在阳极双层内停留10纳秒的时间,相对去质子化速率是决定非均相反应分支的关键因素。我们预测了NaOAc水溶液电解质中阳离子自由基去质子化速率的令人信服的双层调制,这是由离子相互作用产生的预形成的“相遇对”和通过立体电子效应减少激活势垒的组合引起的。我们对这个原型电解反应的计算研究说明了反应条件(溶剂、电解质和过电位)对微观速率常数的重要作用,这些常数在动力学上控制着反应途径/结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
ECE vs DISP Mechanisms in Anodic Electrolysis of Benzyl Alcohols: Computational Prediction of Microscopic Rate Constants

The heterogeneous nature of electrochemical reactions entails unique kinetic control of product yield/selectivity as compared with corresponding homogeneous oxidation/reduction reactions. In direct electrolysis, subsequent elementary steps following the initiating electron transfer may also occur heterogeneously at the electrode surface or homogeneously within the bulk electrolyte, often via a disproportionation step for secondary electron transfer; kinetic control of this branching may have important consequences for product selectivity/yield, due to differences in lifetimes of reactive radical intermediates. In this work, we use computer simulations to predict microscopic rate constants governing the heterogeneous “ECE” electrochemical oxidation of para-methoxybenzyl alcohol to its corresponding aldehyde at a working carbon anode within an aqueous electrolyte. Molecular dynamics simulations are conducted to model the full electrochemical cell at atomistic resolution under conditions approximating controlled potential electrolysis, from which rate constants are predicted via a combination of direct dynamics and free energy sampling methods. Density functional theory-based quantum mechanics/molecular mechanics (DFT-QM/MM) simulations are performed to predict free energy barriers for deprotonation of the cation radical intermediate within the electrical double layer environment. We demonstrate how strong solvophobic forces lead to residence times of ten(s) of nanoseconds for the electrogenerated cation radical intermediates to reside within the anodic double layer, and the relative deprotonation rate is a key factor dictating the heterogeneous vs homogeneous reaction branching. We predict a compelling double-layer modulation for the cation radical deprotonation rate with NaOAc aqueous electrolyte, arising from a combination of preformed “encounter pairs” via ionic interactions and reduction in activation barrier via stereoelectronic effects. Our computational study of this prototypical electrolysis reaction illustrates the substantial role of reaction conditions (solvent, electrolyte, and overpotential) on the microscopic rate constants that kinetically control the reaction pathway/outcome.

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来源期刊
The Journal of Physical Chemistry C
The Journal of Physical Chemistry C 化学-材料科学:综合
CiteScore
6.50
自引率
8.10%
发文量
2047
审稿时长
1.8 months
期刊介绍: The Journal of Physical Chemistry A/B/C is devoted to reporting new and original experimental and theoretical basic research of interest to physical chemists, biophysical chemists, and chemical physicists.
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