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首页> 外文期刊>Journal of Electroanalytical Chemistry: An International Journal Devoted to All Aspects of Electrode Kinetics, Interfacial Structure, Properties of Electrolytes, Colloid and Biological Electrochemistry >Comparative evaluation of the symmetric and asymmetric Marcus-Hush formalisms of electrode kinetics - The one-electron oxidation of tetraphenylethylene in dichloromethane on platinum microdisk electrodes
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Comparative evaluation of the symmetric and asymmetric Marcus-Hush formalisms of electrode kinetics - The one-electron oxidation of tetraphenylethylene in dichloromethane on platinum microdisk electrodes

机译:电极动力学对​​称和不对称Marcus-Hush形式主义的比较评估-铂微盘电极上二氯甲烷中四苯乙烯的单电子氧化

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摘要

We report an experimental comparative evaluation of the Butler-Volmer (BV), symmetric and asymmetric Marcus-Hush (MH) kinetic formalisms. Numerical simulations using these kinetic models are employed to fit experimental cyclic voltammetry of the one-electron oxidation of tetraphenylethylene in dichloromethane under conditions of full electrolyte support at a platinum microdisk electrode. When compared with the BV formalism, the symmetric MH model is seen to give rise to an inferior quality of fit determined by calculating the mean scaled absolute deviation (MSAD) between theory and experiment. This can be traced to its inherent assumption of identical force constants of the reagent and product, rendering it unable to address the asymmetry that exists between the forward and reverse sweeps of the cyclic voltammetry due to the difference in force constants. Where the asymmetric MH formalism is used, cyclic voltammograms with comparable quality of fit to that of BV are obtained. The best-fit parameters obtained for each kinetic model (25 ?C) are: Butler Volmer: k0 = 0.17 cm s~(-1), a = 0.65 Symmetric Marcus-Hush: k0 = 0.15 cm s~(-1),λ≥ kP0.53 eV Asymmetric Marcus-Hush: k0 = 0.15 cm s~(-1),λ≥ kP0.53 eV, β/λ = 0.55 eV~(-1).
机译:我们报告的巴特勒-沃尔默(BV),对称和不对称的马库斯-舒什(MH)动力学形式主义的实验比较评估。使用这些动力学模型的数值模拟被用于拟合在铂微盘电极上完全电解质支持的条件下四苯基乙烯在二氯甲烷中的单电子氧化的实验循环伏安法。与BV形式主义相比,通过计算理论与实验之间的平均比例绝对偏差(MSAD),可以确定对称MH模型的拟合质量较差。这可以追溯到其固有的假设,即试剂和产品的力常数相同,使得由于力常数的差异而无法解决循环伏安法正反扫描之间存在的不对称性。在使用非对称MH形式的情况下,可获得具有与BV相当的拟合质量的循环伏安图。每个动力学模型(25°C)的最佳拟合参数为:Butler Volmer:k0 = 0.17 cm s〜(-1),a = 0.65对称Marcus-Hush:k0 = 0.15 cm s〜(-1), λ≥kP0.53 eV不对称Marcus-Hush:k0 = 0.15 cm s〜(-1),λ≥kP0.53 eV,β/λ= 0.55 eV〜(-1)。

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