Void growth in metal anodes in solid-state batteries: Recent progress and gaps in understanding

被引:10
|
作者
Shishvan, S. S. [1 ,2 ]
Fleck, N. A. [1 ]
Mcmeeking, R. M. [3 ,4 ]
Deshpande, V. S. [1 ]
机构
[1] Univ Cambridge, Dept Engn, Cambridge CB2 1PZ, England
[2] Univ Tabriz, Dept Struct Engn, Tabriz, Iran
[3] Univ Calif Santa Barbara, Dept Mech Engn, Santa Barbara, CA 93106 USA
[4] Univ Calif Santa Barbara, Mat Dept, Santa Barbara, CA 93106 USA
关键词
Solid-state battery; Ceramic electrolyte; Butler-Volmer kinetics; Void growth; IRREVERSIBLE-PROCESSES; ELECTROLYTE INTERFACE; RECIPROCAL RELATIONS; LI; DEFORMATION; MECHANISM; PRESSURE; IMPACT;
D O I
10.1016/j.euromechsol.2023.104998
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
Stripping of metal cations from the anode of a Li- or Na-ion cell into a ceramic electrolyte results in the formation of voids on the electrolyte/electrode interface. Such voids have been observed to grow to sizes in excess of 100 mu m. Dendrites can nucleate and grow in the electrolyte from the vicinity of the voids during the plating phase of cycling of the cell, and lead to short-circuiting of the cell. Current theoretical understanding of the formation of these voids is in its infancy: the prevailing qualitative notion is that voids form within the metal anode when the stripping current density removes metal from the interface faster than it can be replenished. We review models that employ the Onsager formalism to develop a variational approach to model void growth by coupling power-law creep of the metal electrode and the flux of metal cations through a single-ion conductor solid electrolyte. These models, based on standard Butler-Volmer kinetics for the interfacial flux, predict that voids will shrink for realistic combinations of interfacial ionic resistance and electrolyte conductivity. Additional physics in the form of modified kinetics, such that the interfacial resistance is decreased by the presence of dislocations within the creeping metal electrode, are shown to give rise to initial growth of voids around impurity particles on the electrolyte/electrode interface. However, these voids ultimately collapse under the imposed stripping fluxes and no conditions have been identified for which isolated voids grow to more than 10 mu m in size. This is in contrast to the experimentally observed sizes of similar to 100 mu m. The physical processes by which large voids form remain unclear but the current state-of-the-art understanding does provide clues of possible mechanisms that have not as yet been considered.
引用
收藏
页数:12
相关论文
共 50 条
  • [41] ALLOY-ANODES IN FLUORIDE SOLID-STATE BATTERIES
    SCHOONMAN, J
    WOLFERT, A
    JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 1981, 128 (07) : 1522 - 1523
  • [42] Recent progress and challenges for manufacturing and operating solid-state batteries for electric vehicles
    Kazyak, Eric
    Garcia-Mendez, Regina
    MRS BULLETIN, 2024, 49 (07) : 717 - 729
  • [43] Recent progress, challenges, and perspectives in the development of solid-state electrolytes for sodium batteries
    Ahmad, Haseeb
    Kubra, Khadija Tul
    Butt, Annam
    Nisar, Umair
    Iftikhar, Faiza Jan
    Ali, Ghulam
    JOURNAL OF POWER SOURCES, 2023, 581
  • [44] Recent Progress on Dominant Sulfide-Type Solid-State Na Superionic Conductors for Solid-State Sodium Batteries
    Guo, Xiaolin
    Halacoglu, Selim
    Chen, Yan
    Wang, Hui
    SMALL, 2024, 20 (33)
  • [45] Recent Progress and Perspectives of Sodium Metal Anodes for Rechargeable Batteries
    Fang, Hengyi
    Gao, Suning
    Zhu, Zhuo
    Ren, Meng
    Wu, Quan
    Li, Haixia
    Li, Fujun
    CHEMICAL RESEARCH IN CHINESE UNIVERSITIES, 2021, 37 (02) : 189 - 199
  • [46] Recent Progress and Perspectives of Sodium Metal Anodes for Rechargeable Batteries
    Hengyi Fang
    Suning Gao
    Zhuo Zhu
    Meng Ren
    Quan Wu
    Haixia Li
    Fujun Li
    Chemical Research in Chinese Universities, 2021, 37 : 189 - 199
  • [47] Techno-economic assessment of thin lithium metal anodes for solid-state batteries
    Burton, Matthew
    Narayanan, Sudarshan
    Jagger, Ben
    Olbrich, Lorenz F.
    Dhir, Shobhan
    Shibata, Masafumi
    Lain, Michael J.
    Astbury, Robert
    Butcher, Nicholas
    Copley, Mark
    Kotaka, Toshikazu
    Aihara, Yuichi
    Pasta, Mauro
    NATURE ENERGY, 2025, 10 (01): : 135 - 147
  • [48] Progress and prospective of solid-state lithium batteries
    Takada, Kazunori
    ACTA MATERIALIA, 2013, 61 (03) : 759 - 770
  • [49] Research progress of solid-state lithium-metal batteries driven by nanotech
    Guo, Yu-Guo
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2017, 254
  • [50] Promises, Challenges, and Recent Progress of Inorganic Solid-State Electrolytes for All-Solid-State Lithium Batteries
    Gao, Zhonghui
    Sun, Huabin
    Fu, Lin
    Ye, Fangliang
    Zhang, Yi
    Luo, Wei
    Huang, Yunhui
    ADVANCED MATERIALS, 2018, 30 (17)