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Modelling electrode material utilization in the trench model 3D-microbattery by finite element analysis

机译:通过有限元分析来模拟沟槽模型3D微型电池中的电极材料利用率

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摘要

A mathematical model for ionic transport in 3D-microbattery (3D-MB) using finite element analysis is presented here, based on concentrated solution theory, ionic and atomic diffusion and the Butler-Volmer equation. The model is used to study electrochemical processes taking place in the electrodes and electrolyte of a 3D-MB in the trench architecture, with a 10 μm thick electrolyte layer separating 10 μm thick graphite anode and LiCoO_2 cathode plates. The effect of changing conductivity of the positive electrode and the electrode plate height is also studied. Qualitative and quantitative data describing battery performance in terms of concentration gradient development and discharge curves points out the range for the most favourable electronic conductivity values of the electrodes: the values should not differ by more than order of magnitude. Furthermore, it is shown that also with optimal electrode conductivity values for electrodes, the Li ion diffusion in the electrodes during discharge is limiting the performance of the battery due to inhomogeneous lithiation and delithiation. Changing electrode height can be used to fine tune surface area usage, but has a limited effect on the overall battery performance.
机译:本文基于浓缩溶液理论,离子和原子扩散以及Butler-Volmer方程,提出了使用有限元分析的3D微型电池(3D-MB)中离子迁移的数学模型。该模型用于研究沟槽结构中3D-MB的电极和电解质中发生的电化学过程,其中10μm厚的电解质层将10μm厚的石墨阳极和LiCoO_2阴极板隔开。还研究了改变正极的电导率和电极板高度的影响。根据浓度梯度的发展和放电曲线描述电池性能的定性和定量数据指出了电极最有利的电子电导率值的范围:这些值的差异不应超过数量级。此外,还显示出,即使对于电极具有最佳的电极电导率值,由于不均匀的锂化和去锂化,在放电期间Li离子在电极中的扩散也限制了电池的性能。改变电极高度可用于微调表面积的使用,但对整体电池性能的影响有限。

著录项

  • 来源
    《Journal of power sources》 |2010年第18期|P.6218-6224|共7页
  • 作者单位

    Institute of Technology, Tartu University, Nooruse 1,50411 Tartu, Estonia;

    rnInstitute of Technology, Tartu University, Nooruse 1,50411 Tartu, Estonia;

    rnInstitute of Technology, Tartu University, Nooruse 1,50411 Tartu, Estonia;

    rnDepartment of Materials Chemistry, Uppsala University, The Angstrom Laboratory, Box 538, SE-751 21 Uppsala, Sweden;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    microbattery; finite element method; electronic conductivity; electrode design;

    机译:微型电池有限元法电子电导率电极设计;

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