Modeling discharge deposit formation and its effect on lithium-air battery performance

被引:66
|
作者
Wang, Yun [1 ]
机构
[1] Univ Calif Irvine, RERL, Dept Mech & Aerosp Engn, Irvine, CA 92697 USA
基金
美国国家科学基金会;
关键词
Lithium-air battery; Discharge deposit; Passiviation; Modeling; PEM fuel cells; Ice formation; ELECTROLYTE FUEL-CELLS; GLASSY CARBON ELECTRODES; OXYGEN REDUCTION; COLD START; THAN 10); DIFFUSION; CATALYST;
D O I
10.1016/j.electacta.2012.04.137
中图分类号
O646 [电化学、电解、磁化学];
学科分类号
081704 ;
摘要
Lithium-air batteries show a great promise in electrochemical energy storage with their theoretical specific energy comparable to gasoline. Discharge products such as Li2O2 or Li2CO3 are insoluble in several major nonaqueous electrolytes, and consequently precipitate at the reaction sites. These materials are also low in electric conductivity. As a result, the reduced pore space and electrode passiviation increase the reaction resistance and consequently reduce discharge voltage and capability. This work presents a modeling study of discharge product precipitation and effects for lithium-air batteries. Theoretical analysis is also performed to evaluate the variations of important quantities including temperature, species concentrations, and electric potentials. Precipitation growth modes on planar, cylindrical and spherical surfaces are discussed. A new approach, following the study of ice formation in PEM fuel cells, is proposed. Validation is carried out against experimental data in terms of discharge voltage loss. (C) 2012 Elsevier Ltd. All rights reserved.
引用
收藏
页码:239 / 246
页数:8
相关论文
共 50 条
  • [21] LONG-LIFE LITHIUM-AIR BATTERY
    Jacoby, Mitch
    CHEMICAL & ENGINEERING NEWS, 2012, 90 (25) : 10 - 10
  • [22] Formation of Nanocrystalline Cobalt Oxide-Decorated Graphene for Secondary Lithium-Air Battery and Its Catalytic Performance in Concentrated Alkaline Solutions
    Peng, Si-Han
    Lu, Hsin-Chun
    Lue, Shingjiang Jessie
    NANOMATERIALS, 2020, 10 (06) : 1 - 15
  • [23] High-Performance Lithium-Air Battery with a Coaxial-Fiber Architecture
    Zhang, Ye
    Wang, Lie
    Guo, Ziyang
    Xu, Yifan
    Wang, Yonggang
    Peng, Huisheng
    ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2016, 55 (14) : 4487 - 4491
  • [24] Experimental Performance Evaluation of a Rechargeable Lithium-Air Battery Operating at Room Temperature
    Das, Susanta K.
    Rahman, Salma
    Chai, Jianfang
    Quast, Matthew
    Keinath, Steven E.
    Berry, K. Joel
    Mueller, Anja
    Sarkar, Abhijit
    ASME INTERNATIONAL MECHANICAL ENGINEERING CONGRESS AND EXPOSITION, 2014, VOL 6A, 2015,
  • [25] Effects of cathode and electrolyte properties on lithium-air battery performance: Computational study
    Sergeev, Artem V.
    Chertovich, Alexander V.
    Itkis, Daniil M.
    Goodilin, Eugene A.
    Khokhlov, Alexei R.
    JOURNAL OF POWER SOURCES, 2015, 279 : 707 - 712
  • [26] A Lithium-Air Battery Stably Working at High Temperature with High Rate Performance
    Pan, Jian
    Li, Houpu
    Sun, Hao
    Zhang, Ye
    Wang, Lie
    Liao, Meng
    Sun, Xuemei
    Peng, Huisheng
    SMALL, 2018, 14 (06)
  • [27] Carbon-based material for a lithium-air battery
    Wei Wei
    Wang Da-wei
    Yang Quan-hong
    NEW CARBON MATERIALS, 2014, 29 (04) : 265 - 271
  • [28] Oxygen redox catalyst for rechargeable lithium-air battery
    Zhang, Sheng Shui
    Zhang, Zhengcheng
    Green Energy and Technology, 2015, 172 : 541 - 557
  • [29] Carbon-based material for a lithium-air battery
    Wang, Da-Wei, 1600, Institute of Metal Research Chinese Academy of Sciences (29):
  • [30] A lithium-air battery and gas handling system demonstrator
    Jordan, Jack W.
    Vailaya, Ganesh
    Holc, Conrad
    Jenkins, Max
    Mcnulty, Rory C.
    Puscalau, Constantin
    Tokay, Begum
    Laybourn, Andrea
    Gao, Xiangwen
    Walsh, Darren A.
    Newton, Graham N.
    Bruce, Peter G.
    Johnson, Lee R.
    FARADAY DISCUSSIONS, 2024, 248 (00) : 381 - 391