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通过双(氟磺酰)亚胺锂添加剂实现界面稳定,这是提升石墨‖LiCoO软包电池在-20℃下性能的关键。

Interface stabilization via lithium bis(fluorosulfonyl)imide additive as a key for promoted performance of graphite‖LiCoO pouch cell under -20C.

作者信息

Pham Hieu Quang, Chung Gyeong Jun, Han Jisoo, Hwang Eui-Hyung, Kwon Young-Gil, Song Seung-Wan

机构信息

Department of Chemical Engineering and Applied Chemistry, Chungnam National University, Daejeon 34134, South Korea.

Lichem Co., Ltd., Geumsan 32715, South Korea.

出版信息

J Chem Phys. 2020 Mar 7;152(9):094709. doi: 10.1063/1.5144280.

Abstract

The effects of lithium bis(fluorosulfonyl)imide, Li[N(SOF)] (LiFSI), as an additive on the low-temperature performance of graphite‖LiCoO pouch cells are investigated. The cell, which includes 0.2M LiFSI salt additive in the 1M lithium hexafluorophosphate (LiPF)-based conventional electrolyte, outperforms the one without additive under -20 °C and high charge cutoff voltage of 4.3 V, delivering higher discharge capacity and promoted rate performance and cycling stability with the reduced change in interfacial resistance. Surface analysis results on the cycled LiCoO cathodes and cycled graphite anodes extracted from the cells provide evidence that a LiFSI-induced improvement of high-voltage cycling stability at low temperature originates from the formation of a less resistive solid electrolyte interphase layer, which contains plenty of LiFSI-derived organic compounds mixed with inorganics that passivate and protect the surface of the cathode and anode from further electrolyte decomposition and promotes Li ion-transport kinetics despite the low temperature, inhibiting Li metal-plating at the anode. The results demonstrate the beneficial effects of the LiFSI additive on the performance of a lithium-ion battery for use in battery-powered electric vehicles and energy storage systems in cold climates and regions.

摘要

研究了双(氟磺酰)亚胺锂(Li[N(SO₂F)₂],LiFSI)作为添加剂对石墨‖LiCoO软包电池低温性能的影响。该电池在基于1M六氟磷酸锂(LiPF₆)的传统电解液中含有0.2M LiFSI盐添加剂,在-20℃和4.3V的高充电截止电压下,其性能优于无添加剂的电池,具有更高的放电容量、更好的倍率性能和循环稳定性,同时界面电阻变化减小。对从电池中取出的循环LiCoO阴极和循环石墨阳极的表面分析结果表明,LiFSI诱导的低温高压循环稳定性的改善源于形成了电阻较小的固体电解质界面层,该界面层包含大量LiFSI衍生的有机化合物与无机物混合,可钝化和保护阴极和阳极表面,防止电解质进一步分解,并促进锂离子传输动力学,尽管温度较低,但可抑制阳极锂金属镀层的形成。结果证明了LiFSI添加剂对用于寒冷气候和地区的电池供电电动汽车和储能系统的锂离子电池性能具有有益影响。

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