From material properties to multiscale modeling to improve lithium-ion energy storage safety

被引:0
|
作者
John C. Hewson
Hanwei Zhou
Mukul Parmananda
Randy C. Shurtz
Partha P. Mukherjee
机构
[1] Sandia National Laboratories,Engineering Sciences Center
[2] Purdue University,School of Mechanical Engineering
来源
MRS Bulletin | 2021年 / 46卷
关键词
Energy storage; Safety; Lithium-ion; Batteries;
D O I
暂无
中图分类号
学科分类号
摘要
Energy storage using lithium-ion cells dominates consumer electronics and is rapidly becoming predominant in electric vehicles and grid-scale energy storage, but the high energy densities attained lead to the potential for release of this stored chemical energy. This article introduces some of the paths by which this energy might be unintentionally released, relating cell material properties to the physical processes associated with this potential release. The selected paths focus on the anode–electrolyte and cathode–electrolyte interactions that are of typical concern for current and near-future systems. Relevant material processes include bulk phase transformations, bulk diffusion, surface reactions, transport limitations across insulating passivation layers, and the potential for more complex material structures to enhance safety. We also discuss the development, parameterization, and application of predictive models for this energy release and give examples of the application of these models to gain further insight into the development of safer energy storage systems.
引用
收藏
页码:402 / 409
页数:7
相关论文
共 50 条
  • [31] A Vanadium-Based Fluoroxide Cathode Material for Lithium-Ion Storage with High Energy Density
    He, Xiaolong
    Yan, Qi
    He, Haiyan
    Shang, Jian
    Zhou, Xiaolong
    Chanlek, Narong
    Tunmee, Sarayut
    Kidkhunthod, Pinit
    Yao, Wenjiao
    Tang, Yongbing
    ADVANCED SUSTAINABLE SYSTEMS, 2022, 6 (07)
  • [32] Lithium-ion storage properties of titanium oxide nanosheets
    Augustyn, Veronica
    White, Edward R.
    Ko, Jesse
    Gruener, George
    Regan, Brian C.
    Dunn, Bruce
    MATERIALS HORIZONS, 2014, 1 (02) : 219 - 223
  • [33] Sodium–tin metal–organic framework anode material with advanced lithium storage properties for lithium-ion batteries
    Na Wu
    Yu-Jing Yang
    Ting Jia
    Tao-Hai Li
    Feng Li
    Zhe Wang
    Journal of Materials Science, 2020, 55 : 6030 - 6036
  • [34] Review on influence factors and prevention control technologies of lithium-ion battery energy storage safety
    Lv, Youfu
    Geng, Xuewen
    Luo, Weiming
    Chu, Tianying
    Li, Haonan
    Liu, Daifei
    Cheng, Hua
    Chen, Jian
    He, Xi
    Li, Chuanchang
    JOURNAL OF ENERGY STORAGE, 2023, 72
  • [35] Advances in safety of lithium-ion batteries for energy storage: Hazard characteristics and active suppression techniques
    Wang, Yan
    Yu, Tianmin
    Chen, Jie
    Gao, Baobin
    Yu, Mingqiao
    Zhu, Jiateng
    Energy Reviews, 2025, 4 (01):
  • [36] Graphene based electrode materials for lithium-ion batteries: energy storage properties and prospects
    Zhi Lin-jie
    Fang Yan
    Kang Fei-yu
    NEW CARBON MATERIALS, 2011, 26 (01) : 5 - 8
  • [37] Tin oxide-graphite composite for lithium storage material in lithium-ion batteries
    Zhang, XJ
    Huang, ST
    Wu, GL
    Lu, SG
    Cai, ZP
    RARE METALS, 2003, 22 (03) : 226 - 229
  • [38] Miniaturized lithium-ion batteries for on-chip energy storage
    Wang, Zhangci
    Chen, Yuhang
    Zhou, Yuyu
    Ouyang, Jun
    Xu, Shuo
    Wei, Lu
    NANOSCALE ADVANCES, 2022, 4 (20): : 4237 - 4257
  • [39] The energy-storage frontier: Lithium-ion batteries and beyond
    George Crabtree
    Elizabeth Kócs
    Lynn Trahey
    MRS Bulletin, 2015, 40 : 1067 - 1078
  • [40] An Advanced Lithium-Ion Sulfur Battery for High Energy Storage
    Agostini, Marco
    Scrosati, Bruno
    Hassoun, Jusef
    ADVANCED ENERGY MATERIALS, 2015, 5 (16)