Enhancing high-temperature storage performance for the commercial lithium-ion battery via an effective additive strategy

文献信息

发布日期 2023-11-03
DOI 10.1039/D3NJ03574C
影响因子 3.591
作者

Weigang Liu, Shuai Gao, Jingqiang Zheng, Jiahao Gu, Zhiyong Chen, Hao Jiang


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摘要

Lithium-ion batteries play an irreplaceable role in energy storage systems. However, the storage performance of the battery, especially at high temperature, could greatly affect its electrochemical performance. Herein, the storage performance of LiCoO2/graphite full cells under 30% state-of-charge (SOC) and 100% SOC at 45 °C are investigated by introducing a methylene methane disulfonate (MMDS) electrolyte additive into the standard electrolyte (STD). The interfacial stability between the electrolyte and the storage electrode is significantly improved after adding the MMDS (1 wt%) additive, as demonstrated by the electrochemical impedance spectroscopy (EIS), X-ray photoelectron spectroscopy (XPS), scanning electron microscopy (SEM), and transmission electron microscopy (TEM) analysis. As a result, the capacity retention rate and capacity recovery rate of this battery at 30% SOC/100% SOC after 3 months of storage at 45 °C were raised by 2.48%/3.14%, and 2.97%/2%, respectively, compared to the battery with STD. Moreover, the quantitative analysis of the graphite anode showed that the modified electrolyte reduced the content of dead lithium (CODL) and cobalt in the graphite anode by atomic absorption spectrometer (AAS). At 45 °C, after storing for 3 months under 30% SOC, the CODL value decreased from 1.45% to 1.07%, while under 100% SOC and the same storage time, that value only decreased from 1.49% to 1.089%. It indicates that the MMDS additive is a useful electrolyte additive for Li-ion cells in improving its high-temperature storage performance.

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来源期刊

New Journal of Chemistry

New Journal of Chemistry
CiteScore: 5.3
自引率: 3.7%
年发文量: 2153

NJC (New Journal of Chemistry) is a broad-based primary journal encompassing all branches of chemistry and its sub-disciplines. It contains full research articles, communications, perspectives and focus articles. This well-established journal, owned by the Centre National de la Recherche Scientifique (CNRS) of France, has been co-published with the Royal Society of Chemistry since January 1998. NJC is the forum for the publication of high-quality, original and significant work that opens new directions in chemistry or other scientific disciplines. In addition to having a significant chemical component, work published in NJC must demonstrate that it will have an impact on areas of research other than that of the reported work.

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