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用于在长期水电解过程中同时评估阳极和阴极电催化剂稳定性和整体电池性能的双极电化学。

Bipolar Electrochemistry for Concurrently Evaluating the Stability of Anode and Cathode Electrocatalysts and the Overall Cell Performance during Long-Term Water Electrolysis.

机构信息

Analytical Chemistry, Center for Electrochemical Sciences (CES), Ruhr-University Bochum , Universitätsstraße 150, 44780 Bochum, Germany.

出版信息

Anal Chem. 2016 Sep 6;88(17):8835-40. doi: 10.1021/acs.analchem.6b02393. Epub 2016 Aug 10.

DOI:10.1021/acs.analchem.6b02393
PMID:27469162
Abstract

Electrochemical efficiency and stability are among the most important characteristics of electrocatalysts. These parameters are usually evaluated separately for the anodic and cathodic half-cell reactions in a three-electrode system or by measuring the overall cell voltage between the anode and cathode as a function of current or time. Here, we demonstrate how bipolar electrochemistry can be exploited to evaluate the efficiency of electrocatalysts for full electrochemical water splitting while simultaneously and independently monitoring the individual performance and stability of the half-cell electrocatalysts. Using a closed bipolar electrochemistry setup, all important parameters such as overvoltage, half-cell potential, and catalyst stability can be derived from a single galvanostatic experiment. In the proposed experiment, none of the half-reactions is limiting on the other, making it possible to precisely monitor the contribution of the individual half-cell reactions on the durability of the cell performance. The proposed approach was successfully employed to investigate the long-term performance of a bifunctional water splitting catalyst, specifically amorphous cobalt boride (Co2B), and the durability of the electrocatalyst at the anode and cathode during water electrolysis. Additionally, by periodically alternating the polarization applied to the bipolar electrode (BE) modified with a bifunctional oxygen electrocatalyst, it was possible to explicitly follow the contributions of the oxygen reduction (ORR) and the oxygen evolution (OER) half-reactions on the overall long-term durability of the bifunctional OER/ORR electrocatalyst.

摘要

电化学效率和稳定性是电催化剂最重要的特性之一。这些参数通常在三电极系统中分别评估阳极和阴极半反应,或者通过测量阳极和阴极之间的总电池电压作为电流或时间的函数来评估。在这里,我们展示了如何利用双极电化学来评估全电化学水分解的电催化剂的效率,同时独立地监测半电池电催化剂的性能和稳定性。使用封闭的双极电化学装置,可以从单个恒电流实验中得出过电压、半电池电势和催化剂稳定性等所有重要参数。在提出的实验中,没有一个半反应对另一个反应有限制,从而可以精确地监测单个半电池反应对电池性能耐久性的贡献。该方法成功地用于研究双功能水分解催化剂(具体为非晶态钴硼化物 Co2B)的长期性能,以及在水电解过程中电催化剂在阳极和阴极的耐久性。此外,通过周期性地交替施加于修饰有双功能氧电催化剂的双极电极 (BE) 的极化,可以明确地跟踪氧还原 (ORR) 和氧析出 (OER) 半反应对双功能 OER/ORR 电催化剂整体长期耐久性的贡献。

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