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首页> 外文期刊>Journal of power sources >Synergistic effect of nanofluid as catalyst with carbon foam electrode for improved rheological properties of aqueous electrolytes for vanadium redox flow battery
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Synergistic effect of nanofluid as catalyst with carbon foam electrode for improved rheological properties of aqueous electrolytes for vanadium redox flow battery

机译:纳米流体作为碳泡沫电极催化剂的协同作用,提高钒氧化还原电池水电解质水溶液流变性能

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摘要

Enhancing the electrolyte flow characteristics of the electrode is essential in vanadium redox flow batteries. Herein, the design of hybrid electrode with improved flow characteristics is presented to enhance the battery lifetime, electrochemical reaction kinetics, and system efficiency. Further, an open-cell carbon foam is fabricated and experimentally evaluated. This foam acts as a conductor flow field and nanofluidic electrolyte, in which nanoparticles act as a catalyst for electrochemical reactions. The electrochemical performance of a conventional carbon felt electrode is directly compared with that of the hybrid electrode with carbon foam under the same operating conditions. The pumping efficiency of the fabricated hybrid electrode is 1.67 times higher than that of the conventional electrode. The electrochemical reaction is enhanced by the use of nanofluidic electrolytes. Results show that the hybrid electrode with 0.1 wt% nanofluidic electrolyte exhibits the largest discharge capacity (21.85 Wh L-1) and capacity retention (93.4%). The system efficiency can be improved by 2.3% using the hybrid electrodes with nanofluidic electrolytes. This new configuration provides insight into the benefits of replacing conventional carbon felt with carbon foam.
机译:增强电极的电解质流动特性在钒氧化还原流动电池中是必需的。这里,提出了具有改进的流动特性的混合电极的设计以增强电池寿命,电化学反应动力学和系统效率。此外,制造和实验评估开放式细胞碳泡沫。该泡沫作为导体流场和纳米流体电解质,其中纳米粒子用作电化学反应的催化剂。在相同的操作条件下,常规碳毡电极的电化学性能与碳泡沫的杂交电极的电化学性能直接比较。制造的混合电极的泵送效率比传统电极高1.67倍。通过使用纳米流体电解质增强了电化学反应。结果表明,具有0.1wt%纳米流体电解质的杂化电极显示出最大的放电容量(21.85WH1-1)和容量保持(93.4%)。使用具有纳米流体电解质的混合电极可以通过2.3%提高系统效率。这种新配置提供了洞察含有碳泡沫替换常规碳含量的益处。

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