Svetlana Kulakovskaya, Tatyana S. Zyubina, Alexander S. Zyubin, Alexander V. Kulikov, Yuriy A. Dobrovolskiy
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引用次数: 0
摘要
叔丁醇(tert-BuOH, Me3COH)是一种具有高C-H键断裂能的化合物,在没有贵金属或其氧化物作为催化剂和使用无金属电极的情况下氧化,是一种廉价的工艺,在电催化和传感器的实际应用中很有兴趣。本文采用循环伏安法、量子化学建模和电子顺磁共振(EPR)电解法,研究了0.1 M Bu4NClO4溶液中2,5-二甲基吡嗪-二氮氧化物(Pyr1) -叔丁醇-单壁(SWCNT)和多壁(MWCNT)碳纳米管纸电极的电催化体系。利用描述导电碳纳米管表面的簇模型(10,10)计算了电催化体系中Me3COH*Me3COH、Me3COH*MeCN、Pyr1*Me3COH配合物中Me3COH与Pyr1*Bu4NClO4、Pyr1*Me3COH、Me3COH* Bu4NClO4配合物在CNTs表面的非共价相互作用能,并计算了Me3COH与Pyr1*Bu4NClO4配合物在CNTs表面的吸附能。该研究揭示了芳族-二氮-氧化物-碳纳米管电催化体系的规律特征,提出了叔丁醇在电化学生成的自由基阳离子Pyr1存在下氧化的机理。这些数据将有助于在电催化过程中使用碳纳米管电极,以及在电催化和传感器中使用芳香二氮氧化物碳纳米管催化系统。
Role of non-covalent interactions in 2,5-di-Me-pyrazine-di-N-oxide - tertiary butyl alcohol - single-walled and multi-walled carbon nanotubes electrocatalytic systems
Oxidation of tert-butyl alcohol (tert-BuOH, Me3COH), a compound with a high C-H bond breaking energy in the absence of precious metals or their oxides as catalysts and using metal-free electrodes, is an inexpensive process and is of interest for practical applications in electrocatalysis and sensors. In this work, electrocatalytic systems 2,5-di-Me-pyrazine-di-N-oxide (Pyr1) - tert-BuOH – single - walled (SWCNT) and multi-walled (MWCNT) carbon nanotube paper electrodes in 0.1 M Bu4NClO4 solution in acetonitrile (MeCN) were studied by the methods of cyclic voltammetry, quantum chemical modeling and electron paramagnetic resonance (EPR) electrolysis. Calculaition of energies of non-covalent interactions between the components of the electrocatalytic system in complexes Me3COH*Me3COH, Me3COH*MeCN, Pyr1*Me3COH and the adsorption energy of Me3COH and complexes of Pyr1*Bu4NClO4, Pyr1*Me3COH, Pyr1*MeCN and Me3COH *Bu4NClO4 on CNTs surface using a cluster model describing the surface of conducting carbon nanotubes (10, 10) was performed. The study made it possible to reveal the regularities characteristic of aromatic-di-N-oxide – CNT electrocatalytic systems and to propose a mechanism of tert-BuOH oxidation in the presence of electrochemically generated radical cation Pyr1. The data will be useful at using CNT electrodes in electrocatalytic processes, as well as aromatic di-N-oxide-CNT catalytic systems in electrocatalysis and sensors.