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Capacity Contribution Induced by Pseudo-Capacitance Adsorption Mechanism of Anode Carbonaceous Materials Applied in Potassium-ion Battery

机译:钾离子电池中阳极碳质材料的伪电容吸附机理引起的容量贡献

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摘要

The intrinsic bottleneck of graphite intercalation compound mechanism in potassium-ion batteries necessitates the exploitation of novel potassium storage strategies. Hence, utmost efforts have been made to efficiently utilize the extrinsic pseudo-capacitance, which offers facile routes by employing low-cost carbonaceous anodes to improve the performance of electrochemical kinetics, notably facilitating the rate and power characteristics for batteries. This mini-review investigates the methods to maximize the pseudo-capacitance contribution based on the size control and surface activation in recent papers. These methods employ the use of cyclic voltammetry for kinetics analysis, which allows the quantitative determination on the proportion of diffusion-dominated vs. pseudo-capacitance by verifying a representative pseudo-capacitive material of single-walled carbon nanotubes. Synergistically, additional schemes such as establishing matched binder–electrolyte systems are in favor of the ultimate purpose of high-performance industrialized potassium-ion batteries.
机译:钾离子电池中石墨插层复合机理的内在瓶颈使得必须开发新的钾存储策略。因此,已尽最大努力有效地利用了外在的假电容,该假电容通过采用低成本的碳质阳极来改善电化学动力学性能,特别是促进电池的速率和功率特性而提供了简便的途径。这篇小型综述研究了基于最近论文中的尺寸控制和表面活化来最大化伪电容贡献的方法。这些方法利用循环伏安法进行动力学分析,从而可以通过验证单壁碳纳米管的代表性伪电容材料来定量确定扩散主导与伪电容的比例。协同地,诸如建立匹配的粘合剂-电解质系统之类的其他方案有利于高性能工业化钾离子电池的最终目的。

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