Understanding and Engineering Interfacial Adhesion in Solid-State Batteries with Metallic Anodes

被引:14
|
作者
Seymour, Ieuan D. [1 ]
Querel, Edouard [1 ]
Brugge, Rowena H. [1 ]
Pesci, Federico M. [1 ]
Aguadero, Ainara [1 ,2 ]
机构
[1] Imperial Coll London, Dept Mat, Exhibit Rd, London SW7 2AZ, England
[2] CSIC, Inst Ciencia Mat Madrid, Madrid 28049, Spain
基金
英国工程与自然科学研究理事会;
关键词
alkali metals; electrode materials; first-principles calcuations; interfaces; solid-state batteries; LITHIUM DENDRITE FORMATION; IN-SITU; BETA-ALUMINA; ION BATTERIES; ELECTROLYTE INTERPHASE; CHEMICAL-STABILITY; CRYSTAL-STRUCTURE; 1ST PRINCIPLES; ELECTROCHEMICAL STABILITY; SURFACE-CHEMISTRY;
D O I
10.1002/cssc.202202215
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
High performance alkali metal anode solid-state batteries require solid/solid interfaces with fast ion transfer that are morphologically and chemically stable upon electrochemical cycling. Void formation at the alkali metal/solid-state electrolyte interface during alkali metal stripping is responsible for constriction resistances and hotspots that can facilitate dendrite propagation and failure. Both externally applied pressures (35-400 MPa) and temperatures above the melting point of the alkali metal have been shown to improve the interfacial contact with the solid electrolyte, preventing the formation of voids. However, the extreme pressure and temperature conditions required can be difficult to meet for commercial solid-state battery applications. In this review, we highlight the importance of interfacial adhesion or 'wetting' at alkali metal/solid electrolyte interfaces for achieving solid-state batteries that can withstand high current densities without cell failure. The intrinsically poor adhesion at metal/ceramic interfaces poses fundamental limitations on many inorganics solid-state electrolyte systems in the absence of applied pressure. Suppression of alkali metal voids can only be achieved for systems with high interfacial adhesion (i. e. 'perfect wetting') where the contact angle between the alkali metal and the solid-state electrolyte surface goes to theta = 0 degrees. We identify key strategies to improve interfacial adhesion and suppress void formation including the adoption of interlayers, alloy anodes and 3D scaffolds. Computational modeling techniques have been invaluable for understanding the structure, stability and adhesion of solid-state battery interfaces and we provide an overview of key techniques. Although focused on alkali metal solid-state batteries, the fundamental understanding of interfacial adhesion discussed in this review has broader applications across the field of chemistry and material science from corrosion to biomaterials development.
引用
收藏
页数:41
相关论文
共 50 条
  • [31] A Review on Engineering Design for Enhancing Interfacial Contact in Solid-State Lithium-Sulfur Batteries
    Qi, Bingxin
    Hong, Xinyue
    Jiang, Ying
    Shi, Jing
    Zhang, Mingrui
    Yan, Wen
    Lai, Chao
    NANO-MICRO LETTERS, 2024, 16 (01)
  • [32] Interfacial engineering for high-performance garnet-based solid-state lithium batteries
    Wang, Lingchen
    Wu, Jiaxin
    Bao, Chengshuai
    You, Zichang
    Lu, Yan
    Wen, Zhaoyin
    SUSMAT, 2024, 4 (01): : 72 - 105
  • [33] Interfacial engineering on metal anodes in rechargeable batteries
    Wei, Chuanliang
    Tan, Liwen
    Zhang, Yuchan
    Wang, Zhengran
    Xi, Baojuan
    Xiong, Shenglin
    Feng, Jinkui
    ENERGYCHEM, 2022, 4 (05)
  • [34] Electrolyte and interface engineering for solid-state sodium batteries
    Li, Fupeng
    Hou, Minjie
    Zhao, Lanqing
    Zhang, Da
    Yang, Bin
    Liang, Feng
    ENERGY STORAGE MATERIALS, 2024, 65
  • [35] Electrolyte and Interface Engineering for Solid-State Sodium Batteries
    Lu, Yong
    Li, Lin
    Zhang, Qiu
    Niu, Zhiqiang
    Chen, Jun
    JOULE, 2018, 2 (09) : 1747 - 1770
  • [36] Interfacial instabilities in halide-based solid-state batteries
    Liqun Guo
    Jie Zheng
    Lihong Zhao
    Yan Yao
    MRS Bulletin, 2023, 48 : 1247 - 1256
  • [37] Tin Oxynitride Anodes by Atomic Layer Deposition for Solid-State Batteries
    Stewart, David M.
    Pearse, Alexander J.
    Kim, Nam S.
    Fuller, Elliot J.
    Talin, A. Alec
    Gregorczyk, Keith
    Lee, Sang Bok
    Rubloff, Gary W.
    CHEMISTRY OF MATERIALS, 2018, 30 (08) : 2526 - 2534
  • [38] Electrochemistry of anodes in solid-state Li-ion polymer batteries
    Zaghib, K
    Armand, M
    Gauthier, M
    JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 1998, 145 (09) : 3135 - 3140
  • [39] Lithium metal anodes in solid-state batteries: Metal microstructure matters
    Sandoval, Stephanie Elizabeth
    McDowell, Matthew T.
    MATTER, 2023, 6 (07) : 2101 - 2102
  • [40] Insights into interfacial physiochemistry in sulfide solid-state batteries: a review
    Zheng, Jianhui
    Zhu, Xinxin
    Wang, Liguang
    Lu, Jun
    Wu, Tianpin
    MATERIALS CHEMISTRY FRONTIERS, 2023, 7 (20) : 4810 - 4832