首页> 外文期刊>Journal of power sources >Impact of electrode porosity architecture on electrochemical performances of 1mm-thick LiFePO_4 binder-free Li-ion electrodes fabricated by Spark Plasma Sintering
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Impact of electrode porosity architecture on electrochemical performances of 1mm-thick LiFePO_4 binder-free Li-ion electrodes fabricated by Spark Plasma Sintering

机译:电极孔隙度结构对由火花等离子体烧结制造的1mm厚的LiFepo_4粘合剂的锂离子电极电化学性能的影响

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摘要

Thick electrodes with high active material loadings have been intensively studied over the last couple of decades in pursuit of achieving high energy density systems. To optimize and enhance the electrochemical performance of such electrodes, one has to control the pore morphology by, for example, varying the pore size and shape, and the level of porosity. In the present work, the fabrication of thick binder-free LiFePO4 (LFP) electrodes with two different pore sizes (12 and 20 mu m) and porosities (21 vol% and 44 vol%) using Spark Plasma Sintering (SPS) and templating approach is reported. The well-controlled porous architecture inside the thick electrodes is realized by fine-tuning experimental parameters. The impact of porosity architecture on electrochemical performance is quantified and correlated with the 3D tortuosity values determined from both micro-computed tomography and electrochemical impedance-based experimental methods. Based on the micro-computed tomography data analysis, estimated tortuosity values along X, Y, and Z axes reveal an anisotropic effect perpendicularly to the SPS compression axis (Z-direction). This is particularly profoundly observed in the samples with larger pores (20 mu m). The correlation between morphological properties and the rate capability performance is established indicating that the capacity loss happens mainly due to the Li-ion diffusion limitations.
机译:在追求高能量密度系统的最后几十年中,已经集中研究了具有高活跃材料载荷的厚电极。为了优化和增强这种电极的电化学性能,必须通过例如改变孔径和形状,以及孔隙率水平来控制孔形态。在本作工作中,使用火花等离子体烧结(SPS)和模板方法,用两种不同孔径(12和20μm)和孔隙率(12和20μm)和孔隙率(21体积%和44体积%)制备厚粘合剂的LiFepo4(LFP)电极(21体积%和44体积%)据报道。通过微调实验参数实现厚电极内的良好控制的多孔结构。孔隙率架构对电化学性能的影响是量化的,并与由微计算机断层扫描和基于电化学阻抗的实验方法确定的3D曲折值值相关。基于微计算机断层扫描数据分析,沿X,Y和Z轴的估计曲折值垂直于SPS压缩轴(Z方向)垂直地揭示各向异性效果。在具有较大孔(20μm)的样品中特别地观察到这一点特别地观察到。建立了形态学性能与速率能力性能之间的相关性,表明该容量损耗主要是由于锂离子扩散限制。

著录项

  • 来源
    《Journal of power sources》 |2021年第15期|229402.1-229402.9|共9页
  • 作者单位

    Univ Picardie Jules Verne CNRS Lab React & Chim Solides UMR 7314 15 Rue Baudelocque F-80039 Amiens France|CNRS RS2E Reseau Francais Stockage Electrochim Energie FR 3459 Amiens France;

    Univ Picardie Jules Verne CNRS Lab React & Chim Solides UMR 7314 15 Rue Baudelocque F-80039 Amiens France|CNRS RS2E Reseau Francais Stockage Electrochim Energie FR 3459 Amiens France;

    Univ Picardie Jules Verne CNRS Lab React & Chim Solides UMR 7314 15 Rue Baudelocque F-80039 Amiens France|CNRS RS2E Reseau Francais Stockage Electrochim Energie FR 3459 Amiens France;

    Argonne Natl Lab Adv Photon Sources Bldg 401 Rm A4115 9700 S Cass Ave Argonne IL 60439 USA;

    Univ Picardie Jules Verne CNRS Lab React & Chim Solides UMR 7314 15 Rue Baudelocque F-80039 Amiens France|CNRS RS2E Reseau Francais Stockage Electrochim Energie FR 3459 Amiens France|CNRS ALISTORE ERI FR 3104 F-80039 Amiens France;

    Univ Picardie Jules Verne CNRS Lab React & Chim Solides UMR 7314 15 Rue Baudelocque F-80039 Amiens France|CNRS RS2E Reseau Francais Stockage Electrochim Energie FR 3459 Amiens France|CNRS ALISTORE ERI FR 3104 F-80039 Amiens France;

    Univ Picardie Jules Verne CNRS Lab React & Chim Solides UMR 7314 15 Rue Baudelocque F-80039 Amiens France|CNRS RS2E Reseau Francais Stockage Electrochim Energie FR 3459 Amiens France|CNRS ALISTORE ERI FR 3104 F-80039 Amiens France;

  • 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

    Thick electrodes; Cathode material; Spark plasma sintering; mu-CT; Tunable porous architecture;

    机译:厚电极;阴极材料;火花等离子体烧结;MU-CT;可调多孔建筑;
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