Regulating the interfacial chemistry of graphite in ethyl acetate-based electrolyte for low-temperature Li-ion batteries

Ling Che, Zhaowen Hu, Tao Zhang, Peiming Dai, Chengyu Chen, Chao Shen, Haitao Huang, Lifang Jiao, Ting Jin, Keyu Xie

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Battery Energy ›› 2024, Vol. 3 ›› Issue (3) : 20230064. DOI: 10.1002/bte2.20230064
RESEARCH ARTICLE

Regulating the interfacial chemistry of graphite in ethyl acetate-based electrolyte for low-temperature Li-ion batteries

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Abstract

Lithium-ion batteries suffer from severe capacity loss and even fail to work under subzero temperatures, which is mainly due to the sluggish Li+ transportation in the solid electrolyte interphase (SEI) and desolvation process. Ethyl acetate (EA) is a highly promising solvent for lowtemperature electrolytes, yet it has poor compatibility with graphite (Gr) anode. Here, we tuned the interfacial chemistry of EA-based electrolytes via synergies of anions. ODFB− with low solvation numbers, participates in the solvation sheath, significantly reducing the desolvation energy. Meanwhile, combined with the high dissociation of FSI, the reduction of both anions constructs an inorganic-rich SEI to improve interfacial stability. The electrolyte enables Gr anode to deliver a capacity of 293 mA h g−1 and 2.5 Ah LiFePO4∥Gr pouch cell to exhibit 96.85% capacity retention at −20°C. Remarkably, LiFePO4∥Gr pouch cell with the designed electrolyte can still retain 66.28% of its room-temperature capacity even at −40°C.

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ethyl acetate (EA) / graphite / inorganic-rich SEI / lithium-ion batteries / low-temperature electrolyte

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Ling Che, Zhaowen Hu, Tao Zhang, Peiming Dai, Chengyu Chen, Chao Shen, Haitao Huang, Lifang Jiao, Ting Jin, Keyu Xie. Regulating the interfacial chemistry of graphite in ethyl acetate-based electrolyte for low-temperature Li-ion batteries. Battery Energy, 2024, 3(3): 20230064 https://doi.org/10.1002/bte2.20230064

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2024 2024 The Authors. Battery Energy published by Xijing University and John Wiley & Sons Australia, Ltd.
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