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理解钠离子电池 PC 基电解液中钠金属和硬碳负极的电化学兼容性和反应机理。

Understanding the Electrochemical Compatibility and Reaction Mechanism on Na Metal and Hard Carbon Anodes of PC-Based Electrolytes for Sodium-Ion Batteries.

机构信息

College of Chemistry and Molecular Sciences, Hubei International Scientific and Technological Cooperation Base of Sustainable Resource and Energy , Wuhan University , Wuhan 430072 , China.

National Engineering Research Center of Advanced Energy Storage Materials , Changsha 410205 , China.

出版信息

ACS Appl Mater Interfaces. 2018 Nov 21;10(46):39651-39660. doi: 10.1021/acsami.8b13236. Epub 2018 Nov 6.

Abstract

Electrolytes as an important part of sodium-ion batteries have a pivotal role for capacity, rate, and durability of electrode materials. On account of the high reduction activity of sodium metal with organic solvents, it is very important to optimize the electrolyte component to realize high stability on Na metal and hard carbon anodes. Herein, chemical and electrochemical stability of propylene carbonate (PC)-based electrolytes on sodium metal and hard carbon anodes is investigated systematically. The results demonstrate that whether using NaClO or NaPF, the PC-based electrolytes are not stable on Na metal, but adding of FEC can immensely enhance the stability of the electrolyte because of the compact solid electrolyte interphase film formed. The electrolytes containing FEC also exhibit high electrochemical compatibility on hard carbon anodes, showing high reversible capacity and excellent cycling performance. A reaction mechanism based on the Na induction effect is proposed by spectrum and electrochemical measurements. This study can provide a new insight to optimize and develop stable PC-based electrolytes and be helpful for understanding the other electrolyte systems.

摘要

电解质作为钠离子电池的重要组成部分,对电极材料的容量、倍率性能和循环稳定性起着关键作用。由于金属钠与有机溶剂具有很高的还原活性,因此优化电解液成分对于实现钠金属和硬碳负极的高稳定性至关重要。本工作系统地研究了基于碳酸丙烯酯(PC)的电解液在钠金属和硬碳负极上的化学和电化学稳定性。结果表明,无论使用 NaClO4 还是 NaPF6,基于 PC 的电解液在钠金属上均不稳定,但添加氟代碳酸乙烯酯(FEC)后,由于形成了致密的固体电解质界面膜,电解液的稳定性得到极大提高。含有 FEC 的电解液在硬碳负极上也表现出高电化学兼容性,具有高可逆容量和优异的循环性能。通过光谱和电化学测量提出了基于 Na 诱导效应的反应机理。这项研究为优化和开发稳定的基于 PC 的电解液提供了新的思路,并有助于理解其他电解液体系。

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