Switching Electrolyte Interfacial Model to Engineer Solid Electrolyte Interface for Fast Charging and Wide-Temperature Lithium-Ion Batteries

被引:59
|
作者
Liu, Gang [1 ,2 ]
Cao, Zhen [3 ]
Wang, Peng [4 ]
Ma, Zheng [1 ]
Zou, Yeguo [1 ,2 ]
Sun, Qujiang [1 ]
Cheng, Haoran [1 ,2 ]
Cavallo, Luigi [3 ]
Li, Shiyou [4 ]
Li, Qian [1 ]
Ming, Jun [1 ,2 ]
机构
[1] Chinese Acad Sci, State Key Lab Rare Earth Resource Utilizat, Changchun Inst Appl Chem, Changchun 130022, Peoples R China
[2] Univ Sci & Technol China, Hefei 230026, Peoples R China
[3] King Abdullah Univ Sci & Technol KAUST, Phys Sci & Engn Div PSE, Thuwal 239556900, Saudi Arabia
[4] Lanzhou Univ Technol, Sch Petrochem Technol, Lanzhou 730050, Peoples R China
基金
中国国家自然科学基金;
关键词
electrolyte solvation structure; fast charging; lithium-ion batteries; solid electrolyte interfaces; wide-temperature; LI-ION; IN-SITU; CYCLING STABILITY; LONG-LIFE; GRAPHITE; INTERPHASE; ANODES; METAL; SEI; PERFORMANCE;
D O I
10.1002/advs.202201893
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Engineering the solid electrolyte interphase (SEI) that forms on the electrode is crucial for achieving high performance in metal-ion batteries. However, the mechanism of SEI formation resulting from electrolyte decomposition is not fully understood at the molecular scale. Herein, a new strategy of switching electrolyte to tune SEI properties is presented, by which a unique and thinner SEI can be pre-formed on the graphite electrode first in an ether-based electrolyte, and then the as-designed graphite electrode can demonstrate extremely high-rate capabilities in a carbonate-based electrolyte, enabling the design of fast-charging and wide-temperature lithium-ion batteries (e.g., graphite | LiNi0.6Co0.2Mn0.2O2 (NCM622)). A molecular interfacial model involving the conformations and electrochemical stabilities of the Li+-solvent-anion complex is presented to elucidate the differences in SEI formation between ether-based and carbonate-based electrolytes, then interpreting the reason for the obtained higher rate performances. This innovative concept combines the advantages of different electrolytes into one battery system. It is believed that the switching strategy and understanding of the SEI formation mechanism opens a new avenue to design SEI, which is universal for pursuing more versatile battery systems with greater stability.
引用
收藏
页数:9
相关论文
共 50 条
  • [31] Inhibition of solid electrolyte interface formation on cathode particles for lithium-ion batteries
    Li, Wentao
    Lucht, Brett L.
    JOURNAL OF POWER SOURCES, 2007, 168 (01) : 258 - 264
  • [32] Mechanical analysis of the delamination of artificial solid electrolyte interface in lithium-ion batteries
    Lee, Kuo-Jen
    Yang, Hsin-Jung
    Chen, Kuo-Ching
    APPLICATIONS IN ENGINEERING SCIENCE, 2022, 9
  • [33] STM study on graphite/electrolyte interface in lithium-ion batteries: solid electrolyte interface formation in trifluoropropylene carbonate solution
    Inaba, M
    Kawatate, Y
    Funabiki, A
    Jeong, SK
    Abe, T
    Ogumi, Z
    ELECTROCHIMICA ACTA, 1999, 45 (1-2) : 99 - 105
  • [34] STM study on graphite/electrolyte interface in lithium-ion batteries: solid electrolyte interface formation in trifluoropropylene carbonate solution
    Department of Energy and Hydrocarbon Chemistry, Graduate School of Engineering, Kyoto University, Sakyo-ku, Kyoto 606-8501, Japan
    Electrochim Acta, 1 (99-105):
  • [35] Challenges and Advances in Wide-Temperature Electrolytes for Lithium-Ion Batteries
    Hong, Zixin
    Tian, Hui
    Fang, Zhenhan
    Luo, Yufeng
    Wu, Hengcai
    Zhao, Fei
    Li, Qunqing
    Fan, Shoushan
    Wang, Jiaping
    CHEMELECTROCHEM, 2024, 11 (10)
  • [36] Material-electrolyte interfacial interaction enabling the formation of an inorganic-rich solid electrolyte interphase for fast-charging Si-based lithium-ion batteries
    Cheng, Kai
    Tu, Shuibin
    Zhang, Bao
    Wang, Wenyu
    Wang, Xiaohong
    Tan, Yucheng
    Chen, Xiaoxue
    Li, Chunhao
    Li, Chenhui
    Wang, Li
    Sun, Yongming
    ENERGY & ENVIRONMENTAL SCIENCE, 2024, 17 (07) : 2631 - 2641
  • [37] An optimal charging algorithm to minimise solid electrolyte interface layer in lithium-ion battery
    Malik, M. S. S.
    Li, Guang
    Chen, Zheng
    JOURNAL OF POWER SOURCES, 2021, 482
  • [38] A low-temperature electrolyte for lithium and lithium-ion batteries
    Plichta, EJ
    Behl, WK
    JOURNAL OF POWER SOURCES, 2000, 88 (02) : 192 - 196
  • [39] Low-temperature electrolyte for lithium and lithium-ion batteries
    Plichta, E.J.
    Behl, W.K.
    1600, Elsevier Sequoia SA, Switzerland (88):
  • [40] Cathode Solid Electrolyte Interphase Generation in Lithium-Ion Batteries with Electrolyte Additives
    Markmaitree, Tippawan
    Yang, Li
    Lucht, Brett L.
    NON-AQUEOUS ELECTROLYTES FOR LITHIUM BATTERIES, 2011, 33 (28): : 85 - 88