Helmholtz Institute Erlangen-Nürnberg for Renewable Energy (IEK-11), Forschungszentrum Jülich GmbH, Egerlandstr. 3, 91058, Erlangen, Germany.
Department of Chemical and Biological Engineering, Friedrich-Alexander-Universität Erlangen-Nürnberg, Egerlandstr. 3, 91058, Erlangen, Germany.
ChemSusChem. 2022 Mar 8;15(5):e202102228. doi: 10.1002/cssc.202102228. Epub 2022 Feb 3.
Electrode dissolution was monitored in real-time during Kolbe electrolysis along with the characteristic products. The fast determination of appropriate reaction conditions in electro-organic chemistry enables the minimization of electrode degradation while keeping an eye on the optimal formation rate and distribution of products. Herein, essential parameters influencing the dissolution of the electrode material platinum in a Kolbe electrolysis were pinpointed. The formation of reaction products and soluble platinum species were monitored during potentiodynamic and potentiostatic experiments using an electroanalytical flow cell coupled to two different mass spectrometers. The approach opens new vistas in the field of electro-organic chemistry because it enables precise and quick quantification of dissolved metals during electrosynthesis, also involving electrode materials other than platinum. Furthermore, it draws attention to the vital topic of electrode stability in electro-organic synthesis, which becomes increasingly important for the implementation of green chemical processes utilizing renewable energy.
在 Kolbe 电解过程中,实时监测电极溶解情况以及特征产物。在电有机化学中,快速确定合适的反应条件可以最大限度地减少电极降解,同时关注最优的产物形成速率和分布。本文中,确定了影响电极材料铂在 Kolbe 电解中溶解的关键参数。使用配备两个不同质谱仪的电分析流动池,在恒电位和恒电流实验中监测反应产物和可溶性铂物种的形成。该方法在电有机化学领域开辟了新的视野,因为它能够在电合成过程中精确快速地定量溶解金属,同时也涉及除铂以外的电极材料。此外,它还引起了人们对电有机合成中电极稳定性这一重要问题的关注,这对于利用可再生能源实施绿色化学过程变得越来越重要。