Lithiophilicity: The key to efficient lithium metal anodes for lithium batteries

被引:85
|
作者
Li, Yahao [1 ]
Li, Yue [1 ]
Zhang, Lulu [1 ]
Tao, Huachao [1 ]
Li, Qingyu [2 ]
Zhang, Jiujun [3 ,4 ]
Yang, Xuelin [1 ]
机构
[1] China Three Gorges Univ, Coll Elect Engn & New Energy, Hubei Prov Collaborat Innovat Ctr New Energy Micro, Yichang 443002, Hubei, Peoples R China
[2] Guangxi Normal Univ, Sch Chem & Pharmaceut Sci, Guangxi Key Lab Low Carbon Energy Mat, Guilin 541004, Guangxi, Peoples R China
[3] Fuzhou Univ, Coll Mat Sci & Engn, Fuzhou 350108, Fujian, Peoples R China
[4] Univ British Columbia, Dept Chem & Biochem Engn, Vancouver, BC V6T 1W5, Canada
来源
JOURNAL OF ENERGY CHEMISTRY | 2023年 / 77卷
基金
中国国家自然科学基金;
关键词
Lithium metal anode; Lithiophilicity optimization; Host; Artificial SEI; Nucleation sites; Dendrite growth; SOLID-ELECTROLYTE INTERPHASE; 3D CURRENT COLLECTOR; PROTECTIVE LAYER; SURFACE MODIFICATION; CU FOAM; LI; DEPOSITION; NUCLEATION; GROWTH; HOST;
D O I
10.1016/j.jechem.2022.10.026
中图分类号
O69 [应用化学];
学科分类号
081704 ;
摘要
Lithium metal anode of lithium batteries, including lithium-ion batteries, has been considered the anode for next-generation batteries with desired high energy densities due to its high theoretical specific capacity (3860 mA h g-1) and low standards electrode potential (-3.04 V vs. SHE). However, the highly reactive nature of metallic lithium and its direct contact with the electrolyte could lead to severe chemical reactions, leading to the continuous consumption of the electrolyte and a reduction in the cycle life and Coulombic efficiency. In addition, the solid electrolyte interface formed during battery cycling is mainly inorganic, which is too fragile to withstand the extreme volume change during the plating and stripping of lithium. The uneven flux of lithium ions could lead to excessive lithium deposition at local points, resulting in needle-like lithium dendrites, which could pierce the separator and cause short circuits, battery failure, and safety issues. In the last five years, tremendous efforts have been dedicated to addressing these issues, and the most successful improvements have been related to lithiophilicity optimizations. Thus, this paper comprehensively reviewed the lithiophilicity regulation in lithium metal anode modifications and highlighted the vital effect of lithiophilicity. The remaining challenges faced by the lithiophilicity optimization for lithium metal anodes are discussed with the proposed research directions for overcoming the technical challenges in this subject. (c) 2022 Science Press and Dalian Institute of Chemical Physics, Chinese Academy of Sciences. Published by ELSEVIER B.V. and Science Press. All rights reserved.
引用
收藏
页码:123 / 136
页数:14
相关论文
共 50 条
  • [1] Key Aspects of Lithium Metal Anodes for Lithium Metal Batteries
    Ghazi, Zahid Ali
    Sun, Zhenhua
    Sun, Chengguo
    Qi, Fulai
    An, Baigang
    Li, Feng
    Cheng, Hui-Ming
    SMALL, 2019, 15 (32)
  • [2] Tuning the Li-Sn alloy dispersity to improve the lithiophilicity of lithium metal anodes towards stable lithium metal batteries
    Du, Junmou
    Li, Guocheng
    Tan, Yuchen
    Duan, Xiangrui
    Fan, Tianchi
    Du, Changhong
    Zhou, Anjian
    Wang, Yu
    INORGANIC CHEMISTRY FRONTIERS, 2025, 12 (08): : 3137 - 3146
  • [3] PECVD-derived graphene nanowall/lithium composite anodes towards highly stable lithium metal batteries
    Hu, Zhongli
    Li, Zhenzhu
    Xia, Zhou
    Jiang, Tao
    Wang, Gulian
    Sun, Jingyu
    Sun, Pengfei
    Yan, Chenglin
    Zhang, Li
    ENERGY STORAGE MATERIALS, 2019, 22 : 29 - 39
  • [4] Revisiting the Electroplating Process for Lithium-Metal Anodes for Lithium-Metal Batteries
    Sun, Xiaowen
    Zhang, Xinyue
    Ma, Qingtao
    Guan, Xuze
    Wang, Wei
    Luo, Jiayan
    ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2020, 59 (17) : 6665 - 6674
  • [5] Advances in carbon-based composite anodes with gradients of lithiophilicity and conductivity used for stable lithium metal batteries
    Wang, Ya-nan
    Zhan, Ying-xin
    Zhang, Xue-qiang
    Huang, Jia-qi
    NEW CARBON MATERIALS, 2023, 38 (04) : 623 - 637
  • [6] Lithiophilicity chemistry of heteroatom-doped carbon to guide uniform lithium nucleation in lithium metal anodes
    Chen, Xiang
    Chen, Xiao-Ru
    Hou, Ting-Zheng
    Li, Bo-Quan
    Cheng, Xin-Bing
    Zhang, Rui
    Zhang, Qiang
    SCIENCE ADVANCES, 2019, 5 (02)
  • [7] Design and application of copper/lithium composite anodes for advanced lithium metal batteries
    Zhang, Bin
    Ma, Ji-Ping
    Zhao, Yang
    Li, Tong
    Yang, Jin-Lin
    Zhang, Zhan-Ling
    Wei, Shi-Zhong
    Zhou, Guang-Min
    RARE METALS, 2024, 43 (03) : 942 - 970
  • [8] Confronting the Challenges in Lithium Anodes for Lithium Metal Batteries
    Wang, Qingyu
    Liu, Bin
    Shen, Yuanhao
    Wu, Jingkun
    Zhao, Zequan
    Zhong, Cheng
    Hu, Wenbin
    ADVANCED SCIENCE, 2021, 8 (17)
  • [9] Recent advances in research on anodes for safe and efficient lithium-metal batteries
    Zhang, Jifang
    Su, Yipeng
    Zhang, Yuegang
    NANOSCALE, 2020, 12 (29) : 15528 - 15559
  • [10] Construction of copper oxynitride nanoarrays with enhanced lithiophilicity toward stable lithium metal anodes
    Lei, Meina
    You, Zongyuan
    Ren, Lingbo
    Liu, Xingrui
    Wang, Jian-Gan
    JOURNAL OF POWER SOURCES, 2020, 463