TY - JOUR
T1 - Enhanced cycling, safety and high-temperature performance of hybrid Li ion/ Li metal batteries via fluoroethylene carbonate additive
AU - Gao, Tingsong
AU - Bian, Juncao
AU - Huang, Fengbin
AU - Ling, Sifan
AU - Li, Zhiqiang
AU - Yuan, Huimin
AU - Lin, Haibin
AU - Kong, Long
AU - Deng, Bei
AU - Zhao, Yusheng
AU - Lu, Zhouguang
N1 - Publisher Copyright:
© 2023 Elsevier B.V.
PY - 2024/2/15
Y1 - 2024/2/15
N2 - Hybrid graphite/Li metal anode has been proved to be a feasible approach to enlarge the energy density of Li-ion batteries. However, there is still a gap between the electrochemical performance of the hybrid Li-ion/Li metal batteries (HLI-LMBs) and the practical requirements. In this work, the cycling, safety and high-temperature performance of the HLI-LMBs have been successfully enhanced via adding fluoroethylene carbonate (FEC) in the electrolyte. It is found that FEC can facilitate the formation of a LiF-rich SEI layer on the surface of Li metal, which effectively suppresses the formation of Li dendrites and enables uniform deposition of Li metal on the surface of graphite. The LiF-rich SEI layer can restrain the exothermal reaction between Li metal and electrolyte under short-circuit. Moreover, the LiF-rich SEI slows down the reaction of anode with electrolyte and largely suppresses the Li dendrite formation at high temperature, improving the high-temperature performance of the HLI-LMBs. This work sheds the light on the critical roles of electrolyte additive and can serve as a guideline for the development of high-performance HLI-LMBs.
AB - Hybrid graphite/Li metal anode has been proved to be a feasible approach to enlarge the energy density of Li-ion batteries. However, there is still a gap between the electrochemical performance of the hybrid Li-ion/Li metal batteries (HLI-LMBs) and the practical requirements. In this work, the cycling, safety and high-temperature performance of the HLI-LMBs have been successfully enhanced via adding fluoroethylene carbonate (FEC) in the electrolyte. It is found that FEC can facilitate the formation of a LiF-rich SEI layer on the surface of Li metal, which effectively suppresses the formation of Li dendrites and enables uniform deposition of Li metal on the surface of graphite. The LiF-rich SEI layer can restrain the exothermal reaction between Li metal and electrolyte under short-circuit. Moreover, the LiF-rich SEI slows down the reaction of anode with electrolyte and largely suppresses the Li dendrite formation at high temperature, improving the high-temperature performance of the HLI-LMBs. This work sheds the light on the critical roles of electrolyte additive and can serve as a guideline for the development of high-performance HLI-LMBs.
KW - Battery safety
KW - Cycle life
KW - Fluoroethylene carbonate
KW - High-temperature performance
KW - Hybrid Li-Ion/ Li metal battery
UR - https://www.scopus.com/pages/publications/85181055060
U2 - 10.1016/j.matchemphys.2023.128868
DO - 10.1016/j.matchemphys.2023.128868
M3 - 文章
AN - SCOPUS:85181055060
SN - 0254-0584
VL - 314
JO - Materials Chemistry and Physics
JF - Materials Chemistry and Physics
M1 - 128868
ER -