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在钾离子电池中提高石墨电极高倍率性能和循环性能的策略

Strategies for Harnessing High Rate and Cycle Performance from Graphite Electrodes in Potassium-Ion Batteries.

作者信息

Kaushik Shubham, Kubota Keigo, Hwang Jinkwang, Matsumoto Kazuhiko, Hagiwara Rika

机构信息

AIST-Kyoto University Chemical Energy Materials Open Innovation Laboratory (ChEM-OIL), Sakyo-ku, Kyoto 606-8501, Japan.

Graduate School of Energy Science, Kyoto University, Sakyo-ku, Kyoto 606-8501, Japan.

出版信息

ACS Appl Mater Interfaces. 2022 Mar 30;14(12):14302-14312. doi: 10.1021/acsami.2c02685. Epub 2022 Mar 18.

Abstract

Potassium-ion batteries (PIBs) have been lauded as the next-generation energy storage systems on account of their high voltage capabilities and low costs and the high abundance of potassium resources. However, the practical utility of PIBs has been heavily encumbered by severe K metal dendrite formation, safety issues, and insufficient electrochemical performance during operations─indeed critical issues that underpin the need for functional electrolytes with high thermal stability, robust solid-electrolyte interphase (SEI)-forming capabilities, and high electrochemical performance. In a bid to establish a knowledge framework for harnessing high rate capabilities and long cycle life from graphite negative electrodes, this study presents the physical properties and electrochemical behavior of a high K concentration inorganic ionic liquid (IL) electrolyte, K[FSA]-Cs[FSA] (FSA = bis(fluorosulfonyl)amide) (54:46 in mol), at an intermediate temperature of 70 °C. This IL electrolyte demonstrates an ionic conductivity of 2.54 mS cm and a wide electrochemical window of 5.82 V. Charge-discharge tests performed on a graphite negative electrode manifest a high discharge capacity of 278 mAh g (0.5 C) at 70 °C, a high rate capability (106 mAh g at 100 C), and a long cyclability (98.7% after 450 cycles). Stable interfacial properties observed by electrochemical impedance spectroscopy during cycling are attributed to the formation of sulfide-rich all-inorganic SEI, which was examined through X-ray photoelectron spectroscopy. The performance of the IL is collated with that of an -methyl--propylpyrrolidinium-based organic IL to provide insight into the synergism between the highly concentrated K electrolyte at intermediate temperatures and the all-inorganic SEI during electrochemical operations of the graphite negative electrode.

摘要

钾离子电池(PIBs)因其高电压能力、低成本以及钾资源的丰富而被誉为下一代储能系统。然而,PIBs的实际应用受到严重的钾金属枝晶形成、安全问题以及运行过程中电化学性能不足的严重阻碍,这些关键问题确实凸显了对具有高热稳定性、强大的固体电解质界面(SEI)形成能力和高电化学性能的功能性电解质的需求。为了建立一个利用石墨负极的高倍率性能和长循环寿命的知识框架,本研究展示了一种高钾浓度无机离子液体(IL)电解质K[FSA]-Cs[FSA](FSA = 双(氟磺酰基)酰胺)(摩尔比为54:46)在70°C中间温度下的物理性质和电化学行为。这种IL电解质表现出2.54 mS cm的离子电导率和5.82 V的宽电化学窗口。在石墨负极上进行的充放电测试表明,在70°C时具有278 mAh g(0.5 C)的高放电容量、高倍率性能(在100 C时为106 mAh g)和长循环稳定性(450次循环后为98.7%)。循环过程中通过电化学阻抗谱观察到的稳定界面性质归因于富含硫化物的全无机SEI的形成,这通过X射线光电子能谱进行了研究。将该IL的性能与基于N-甲基-N-丙基吡咯烷鎓的有机IL的性能进行了对比,以深入了解中间温度下高浓度钾电解质与石墨负极电化学操作过程中的全无机SEI之间的协同作用。

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