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首页> 外文期刊>Carbon: An International Journal Sponsored by the American Carbon Society >High-power positive electrode based on synergistic effect of N- and WO3 -decorated carbon felt for vanadium redox flow batteries
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High-power positive electrode based on synergistic effect of N- and WO3 -decorated carbon felt for vanadium redox flow batteries

机译:基于N-和WO3 - 钒碳含量的协同效应的高功率正电极含钒氧化铈流量电池

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摘要

Although Vanadium Redox Flow Batteries (VRFB) are suitable for grid-scale applications, their power-related cost must be reduced in order to boost the use of this technology in the market, allowing their widespread commercialization. One effective way to make the VRFB a competitive and viable solution could be through new strategies for improving the electrocatalytic activity of the electrodes with enhanced electrolyte/electrode interface characteristics. Herein, we report the synergistic effect demonstrated by N- and WO3- decorated carbon-based positive electrode, named HTNW electrode, which demonstrates the feasibility of achieving: i) enhanced electrocatalytic activity, achieving large current density and high reversibility towards VO2+/VO2+ couple (promotion of oxygen and electron transfer processes), ii) decrement of the electron-transfer resistance from 76.18 Omega to 13.00 Omega for the pristine electrode and HTNW electrodes, respectively; iii) 51% of the electrolyte utilization ratio at high rates (i.e. 200 mA cm(-2)) with 70% of energy efficiency; iv) increment of more than 50% of the power-peak in comparison with pristine electrode. (C) 2018 Elsevier Ltd. All rights reserved.
机译:虽然钒氧化还原电池(VRFB)适用于网格级应用,但必须减少其电源相关成本,以提高市场在市场上的使用,允许其广泛的商业化。使VRFB具有竞争性和可行解决方案的一种有效方法可以通过新的策略来改善具有增强电解质/电极接口特性的电极的电极的电催化活性。在此,我们报告了N-和WO3-装饰的碳基正电极,名为HTNW电极的协同效应,该电极证明了实现的可行性:I)增强的电催化活性,实现了大的电流密度和朝向VO2 + / VO2 +夫妇的高可逆性(促进氧气和电子转移过程),ii)分别从76.18Ω分别从76.18ω至13.00ω的电子转移电阻递减到原始电极和HTNW电极; III)高速率下电解质利用率的51%(即200 mA cm(-2)),具有70%的能量效率; IV与原始电极相比,占功率峰值超过50%的增量。 (c)2018年elestvier有限公司保留所有权利。

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