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Quantitative voltammetry of the reduction of methyl benzoate in THF reveals strong ion pairing of the radical anion with tetra-n-butyl cations

机译:定量伏安法测定THF中苯甲酸甲酯的还原量显示自由基阴离子与四正丁基阳离子的强离子配对

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The reduction of methyl benzoate was studied in tetrahydrofuran (THF), 0.1 M TBAP, both at platinum and glassy carbon macroelectrodes and at platinum microelectrodes. While cyclic voltammograms obtained at macroelectrodes show extensive distortion due to ohmic drop, this distortion is negligible for cyclic voltammograms obtained at microelectrodes. The system methyl benzoate/methyl benzoate radical anion was found to be chemically reversible. The fitting of chronoamperometric measurements using the Shoup and Szabo's expression obtained at microdisc electrodes allowed us to estimate the diffusion coefficient of methyl benzoate. Cyclic voltammetry was modelled allowing the determination of the formal potential, E-f(o), of the transfer coefficient, alpha, and of the standard heterogeneous kinetic constant for the electron transfer, k(o). Furthermore, it was found that the diffusion coefficient for the radical anion produced at the electrode surface has an apparent value of 2.1 x 10(-6) +/- 0.5 cm(2) s(-1) (25 degrees C) which is ca. 10 times smaller than the value obtained for the diffusion coefficient of methyl benzoate (2.1 x 10(-5) +/- 0.1 cm(2) s(-1)). Taking into account the species present in solution, this result could only be explained by a strong ion pairing between the methyl benzoate anion radical and the tetra-n-butylammonium cation used as an electrolyte ion in the solution. The ion pair is found to be stable on the time scale of cyclic voltammetry and no evidence of any following homogeneous chemical reaction was found. Further studies involved the performance of cyclic voltammetry and chronoamperometry at low temperatures (down up to -81 degrees C) and the analysis of this data allowed the determination of the activation energy, EA, through an Arrhenius plot, both for the diffusion coefficient and for the electron transfer reaction. Copyright (C) 2008 John Wiley & Sons, Ltd.
机译:在四氢呋喃(THF),0.1 M TBAP中,在铂和玻璃碳大电极以及铂微电极上都研究了苯甲酸甲酯的还原。虽然在大电极处获得的循环伏安图显示由于欧姆降而导致的广泛畸变,但对于在微电极处获得的循环伏安图,这种失真可以忽略不计。发现苯甲酸甲酯/苯甲酸甲酯自由基阴离子体系是化学可逆的。使用在微盘电极上获得的Shoup和Szabo表达式对计时电流法进行的拟合使我们能够估计苯甲酸甲酯的扩散系数。对循环伏安法进行建模,可以确定形式势E-f(o),转移系数α和电子转移的标准异质动力学常数k(o)。此外,发现在电极表面产生的自由基阴离子的扩散系数具有2.1 x 10(-6)+/- 0.5 cm(2)s(-1)(25摄氏度)的表观值。 ca.比苯甲酸甲酯的扩散系数(2.1 x 10(-5)+/- 0.1 cm(2)s(-1))小10倍。考虑到溶液中存在的物质,只能用苯甲酸甲酯阴离子自由基与用作溶液中电解质离子的四正丁基铵阳离子之间的强离子配对来解释这一结果。发现该离子对在循环伏安法的时间尺度上是稳定的,并且没有发现任何随后均相化学反应的证据。进一步的研究涉及在低温(低至-81摄氏度)下循环伏安法和计时电流法的性能,对该数据的分析允许通过Arrhenius曲线确定活化能EA,用于扩散系数和对电子转移反应。版权所有(C)2008 John Wiley&Sons,Ltd.

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