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Mitigating electrode polarization through electrolyte concentration optimization

  • Weibin Chen
  • , Kai Wang
  • , Xuanlong He
  • , Xi Chen
  • , Tao Huang
  • , Jing Chen
  • , Weiyuan Huang
  • , Xuming Yang
  • , Xiangzhong Ren
  • , Xiaoping Ouyang
  • , Jianhong Liu
  • , Feng Pan
  • , Biwei Xiao
  • , Qianling Zhang
  • , Jiangtao Hu
  • Shenzhen University
  • Peking University
  • XiangTan University
  • GRINM (Guangdong) Research Institute for Advanced Materials and Technology

科研成果: 期刊稿件文章同行评审

6 引用 (Scopus)

摘要

High-loading electrodes are crucial for attaining elevated high energy density in the industrial applications of lithium-ion batteries. However, a rise in electrode loading correlates with an elevation in electrode tortuosity. The elevated tortuosity of the transport pathway may result in a discrepancy between ion transport and electrode reaction, leading to excessive or incomplete reactions of localized particles, creating concentration gradient phenomena, and ultimately causing capacity loss. Research on high-loading electrodes mostly concentrates on the regulation of electrode structure and material modification, while investigations into electrolyte concentration predominantly emphasize solvation structures; however, the correlation between electrolyte concentration and high-loading electrodes has been inadequately explored. This study examines the effect of electrolyte concentration on the electrochemical performance of high-loading LiNi₀.₈₃Mn₀.₁₂Co₀.₀₅O₂ (NMC83) electrode. Utilizing pore network modeling (PNM), high-resolution techniques, and pore equivalent diameters (EqD) analysis to compare ion transport pathways and abilities under different electrolyte concentrations. It was observed that a concentration of 1.5 M in the conventional electrolyte can establish a more efficient percolation channel and provide sufficient lithium ions to achieve a balance between ion transport and electrode reaction, thereby alleviating the inherent concentration polarization of high-loading electrodes.

源语言英语
期刊论文编号110950
期刊Nano Energy
139
DOI
出版状态已出版 - 15 6月 2025
已对外发布

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