Theoretical simulation of the optimal relation between active material, binder and conductive additive for lithium-ion battery cathodes

被引:44
作者
Miranda, D. [1 ]
Goren, A. [2 ,3 ]
Costa, C. M. [2 ,3 ]
Silva, M. M. [3 ]
Almeida, A. M. [2 ]
Lanceros-Mendez, S. [2 ,4 ,5 ]
机构
[1] 2Ai Polytech Inst Cavado & Ave, Campus IPCA, P-4750810 Barcelos, Portugal
[2] Univ Minho, Ctr Fis, P-4710057 Braga, Portugal
[3] Univ Minho, Ctr Quim, P-4710057 Braga, Portugal
[4] Basque Ctr Mat Applicat & Nanostruct, BCMat, UPV EHU Sci Pk, Leioa 48940, Spain
[5] Basque Fdn Sci, Ikerbasque, Bilbao 48013, Spain
关键词
LFP; LMO; C-45; Binder; Cathodes; Lithium-ion batteries; OF-THE-ART; POROSITY DISTRIBUTION; ELECTRODE; PERFORMANCE; CHALLENGES; LIMN2O4;
D O I
10.1016/j.energy.2019.01.122
中图分类号
O414.1 [热力学];
学科分类号
摘要
The cathode formulation for lithium-ion batteries has been optimized taking into consideration different active material, polymer binder and conductive additive ratios. Theoretical simulations have been carried out to evaluate the influence of different materials relative contents in the electrode performance, at various discharge rates. Simulations were performed by the finite element method applying the Doyle/Fuller/Newman model for two different active materials (C-LiFePO4 and LiMn2O4) and some results were compared with experimental data. The optimization of the electrode formulation is dependent on the maximum value of n, defined as the ratio polymer binder/conductive additive. The electrical conductivity of the cathode depends on the conductive material, thus it is dependent on the ratio n. The optimum balance of the cathode components is reported considering the performance and the mechanical stability. (C) 2019 Elsevier Ltd. All rights reserved.
引用
收藏
页码:68 / 78
页数:11
相关论文
共 37 条
  • [1] Castelli GF, 2018, COMPUTERS MATH APPL
  • [2] Selection of conductive additives in Li-ion battery cathodes - A numerical study
    Chen, Y.-H.
    Wang, C.-W.
    Liu, G.
    Song, X.-Y.
    Battaglia, V. S.
    Sastry, A. M.
    [J]. JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 2007, 154 (10) : A978 - A986
  • [3] Simulation and analysis of stress in a Li-ion battery with a blended LiMn2O4 and LiNi0.8Co0.15Al0.05O2 cathode
    Dai, Yiling
    Cai, Long
    White, Ralph E.
    [J]. JOURNAL OF POWER SOURCES, 2014, 247 : 365 - 376
  • [4] Daniel C.J.O. Besenhard., 2012, HDB BATTERY MAT
  • [5] Lithium batteries To the limits of lithium
    Evarts, Eric C.
    [J]. NATURE, 2015, 526 (7575) : S93 - S95
  • [6] Recent developments in cathode materials for lithium ion batteries
    Fergus, Jeffrey W.
    [J]. JOURNAL OF POWER SOURCES, 2010, 195 (04) : 939 - 954
  • [7] Structural and mechanical characterization of lithium-ion battery electrodes via DEM simulations
    Gimenez, Clara Sangros
    Finke, Benedikt
    Nowak, Christine
    Schilde, Carsten
    Kwade, Arno
    [J]. ADVANCED POWDER TECHNOLOGY, 2018, 29 (10) : 2312 - 2321
  • [8] Glaize C., 2013, LITHIUM BATTERIES OT
  • [9] State of the art and open questions on cathode preparation based on carbon coated lithium iron phosphate
    Goeren, A.
    Costa, C. M.
    Silva, M. M.
    Lanceros-Mendez, S.
    [J]. COMPOSITES PART B-ENGINEERING, 2015, 83 : 333 - 345
  • [10] The impact of multi-layered porosity distribution on the performance of a lithium ion battery
    Hosseinzadeh, Elham
    Marco, James
    Jennings, Paul
    [J]. APPLIED MATHEMATICAL MODELLING, 2018, 61 : 107 - 123