High-Safety Lithium-Ion Batteries with Silicon-Based Anodes Enabled by Electrolyte Design

被引:4
|
作者
Hu, Kangjia [1 ]
Sang, Xiaoyu [1 ]
Chen, Jiaxin [1 ]
Liu, Zetong [1 ]
Zhang, Jiahui [1 ]
Hu, Xianluo [1 ]
机构
[1] Huazhong Univ Sci & Technol, Sch Mat Sci & Engn, State Key Lab Mat Proc & Die & Mould Technol, Wuhan 430074, Peoples R China
基金
中国国家自然科学基金;
关键词
lithium ion batteries; safety; thermal runaway; silicon-based anodes; electrolytes; THERMAL RUNAWAY MECHANISM; VINYLENE CARBONATE; FAILURE-MECHANISM; CATHODE MATERIALS; ALLOY ANODES; LIQUID; PERFORMANCE; GRAPHITE; LIPF6; OXIDE;
D O I
10.1002/asia.202300820
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
High-energy-density lithium-ion batteries (LIBs) with high safety have long been pursued for extending the cruise range of electric vehicles. Owing to the high gravimetric capacity, silicon is a promising alternative to the convention graphite anode for high-energy LIBs. However, it suffers from intrinsic poor interfacial stability with liquid electrolytes, inevitably increasing the risk of thermal runaway and posing serious safety challenges. In this review, we will focus on mitigating thermal runaway of silicon anodes-based LIBs from the perspective of electrolyte design. First, the thermal runaway mechanism of LIBs is briefly introduced, while the specific thermal failure reactions associated with silicon anodes and electrolytes are discussed in detail. We then summarize the safety countermeasures (e. g., thermally stable solid electrolyte interphase, nonflammable electrolytes, highly stable lithium salts, mitigating electrode crosstalk, and solid-state electrolytes) enabled by customized electrolyte design to address these triggers of thermal runaway. Finally, the remaining unanswered questions regarding the thermal runaway mechanism are presented, and future directions to achieve intrinsically safe electrolytes for silicon-based anodes are prospected. This review is expected to provide insightful knowledge for improving the safety of LIBs with silicon-based anodes. This review focuses on mitigating thermal runaway of silicon anodes-based LIBs from the perspective of electrolyte design. First, the thermal runaway mechanism of LIBs is briefly introduced, while the specific thermal failure reactions associated with silicon anodes and electrolytes are discussed in detail. We then summarize the safety countermeasures enabled by customized electrolyte design to address these triggers of thermal runaway. Finally, the remaining unanswered questions regarding the thermal runaway mechanism are presented, and future directions to achieve intrinsically safe electrolytes for silicon-based anodes are prospected.image
引用
收藏
页数:18
相关论文
共 50 条
  • [41] Silicon-Based and -Related Materials for Lithium-Ion Batteries
    Zhao, Yun
    Kang, Yuqiong
    Jin, Yuhong
    Wang, Li
    Tian, Guangyu
    He, Xiangming
    PROGRESS IN CHEMISTRY, 2019, 31 (04) : 613 - 630
  • [42] Review of silicon-based alloys for lithium-ion battery anodes
    Zhi-yuan Feng
    Wen-jie Peng
    Zhi-xing Wang
    Hua-jun Guo
    Xin-hai Li
    Guo-chun Yan
    Jie-xi Wang
    International Journal of Minerals, Metallurgy and Materials, 2021, 28 : 1549 - 1564
  • [43] Review of silicon-based alloys for lithium-ion battery anodes
    Feng, Zhi-yuan
    Peng, Wen-jie
    Wang, Zhi-xing
    Guo, Hua-jun
    Li, Xin-hai
    Yan, Guo-chun
    Wang, Jie-xi
    INTERNATIONAL JOURNAL OF MINERALS METALLURGY AND MATERIALS, 2021, 28 (10) : 1549 - 1564
  • [44] Review of silicon-based alloys for lithium-ion battery anodes
    Zhi-yuan Feng
    Wen-jie Peng
    Zhi-xing Wang
    Hua-jun Guo
    Xin-hai Li
    Guo-chun Yan
    Jie-xi Wang
    International Journal of Minerals Metallurgy and Materials, 2021, 28 (10) : 1549 - 1564
  • [45] Controllable and scalable prelithiation of dry silicon-based anodes for high-energy-density lithium-ion batteries
    Dong, Haochen
    Yang, Tingzhou
    Liu, Chuangwei
    Luo, Dan
    Liu, Ning
    Gao, Yunnan
    Shi, Zhenjia
    Zhang, Yongguang
    Chen, Zhongwei
    ENERGY STORAGE MATERIALS, 2025, 75
  • [46] Constructing a conductive and buffer network on microscale silicon-based anodes for high-performance lithium-ion batteries
    He, Xuechen
    Fang, Shiwei
    Li, Zhenglong
    Wu, Zhijun
    Liu, Yanxia
    Liu, Yongfeng
    Gao, Mingxia
    Du, Wubin
    Yang, Yaxiong
    JOURNAL OF ALLOYS AND COMPOUNDS, 2023, 949
  • [47] Electrolytes for High-Safety Lithium-Ion Batteries at Low Temperature: A Review
    Yun, Shuhong
    Liang, Xinghua
    Xi, Junjie
    Liao, Leyu
    Cui, Shuwan
    Chen, Lihong
    Li, Siying
    Hu, Qicheng
    POLYMERS, 2024, 16 (18)
  • [48] Nano-vault architecture mitigates stress in silicon-based anodes for lithium-ion batteries
    Haro, Marta
    Kumar, Pawan
    Zhao, Junlei
    Koutsogiannis, Panagiotis
    Porkovich, Alexander James
    Ziadi, Zakaria
    Bouloumis, Theodoros
    Singh, Vidyadhar
    Juarez-Perez, Emilio J.
    Toulkeridou, Evropi
    Nordlund, Kai
    Djurabekova, Flyura
    Sowwan, Mukhles
    Grammatikopoulos, Panagiotis
    COMMUNICATIONS MATERIALS, 2021, 2 (01)
  • [49] Understanding and research progress on the initial coulombic efficiency of silicon-based anodes in lithium-ion batteries
    Cheng, Long
    Wang, Zhoulu
    Wang, Tiantian
    Wu, Yutong
    Liu, Xiang
    Zhang, Yi
    JOURNAL OF ELECTROANALYTICAL CHEMISTRY, 2024, 973
  • [50] Effect of temperature on silicon-based anodes for lithium-ion batteries (vol 441, 227080, 2019)
    Piemas-Munoz, M. J.
    Trask, S. E.
    Dunlop, A. R.
    Lee, E.
    Bloom, I.
    JOURNAL OF POWER SOURCES, 2020, 448