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支持电有机合成电解质的困境:以Kolbe 电解为例。

The Dilemma of Supporting Electrolytes for Electroorganic Synthesis: A Case Study on Kolbe Electrolysis.

机构信息

UFZ-Helmholtz-Centre for Environmental Research, Department of Environmental Microbiology, Permoserstraße 15, 04318, Leipzig, Germany), Fax: (+49) 341-235-1351.

出版信息

ChemSusChem. 2016 Jan 8;9(1):50-60. doi: 10.1002/cssc.201501407. Epub 2015 Nov 19.

Abstract

Remarkably, coulombic efficiency (CE, about 50 % at 1 Farad equivalent), and product composition resulting from aqueous Kolbe electrolysis are independent of reactor temperature and initial pH value. Although numerous studies on Kolbe electrolysis are available, the interrelations of different reaction parameters (e.g., acid concentration, pH, and especially electrolytic conductivity) are not addressed. A systematic analysis based on cyclic voltammetry reveals that solely the electrolytic conductivity impacts the current-voltage behavior. When using supporting electrolytes, not only their concentration, but also the type is decisive. We show that higher concentrations of KNO3 result in reduced CE and thus in significant increase in electric energy demand per converted molecule, whereas Na2 SO4 allows improved space-time yields. Pros and cons of adding supporting electrolytes are discussed in a final cost assessment.

摘要

值得注意的是,科尔贝电解的库仑效率(CE,在 1 法拉第当量时约为 50%)和产物组成与反应器温度和初始 pH 值无关。尽管有许多关于科尔贝电解的研究,但不同反应参数(例如酸浓度、pH 值,特别是电解质电导率)之间的相互关系尚未得到解决。基于循环伏安法的系统分析表明,仅电解质电导率会影响电流-电压行为。使用支持电解质时,不仅其浓度,而且类型也很重要。我们表明,较高浓度的 KNO3 会导致 CE 降低,从而导致每转化一个分子所需的电能显著增加,而 Na2 SO4 则允许提高时空产率。在最终的成本评估中,讨论了添加支持电解质的利弊。

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