Quantification of Heterogeneous Degradation in Li-Ion Batteries

  • Yang Yang
  • , Rong Xu
  • , Kai Zhang
  • , Sang Jun Lee
  • , Linqin Mu
  • , Pengfei Liu
  • , Crystal K. Waters
  • , Stephanie Spence
  • , Zhengrui Xu
  • , Chenxi Wei
  • , David J. Kautz
  • , Qingxi Yuan
  • , Yuhui Dong
  • , Young Sang Yu
  • , Xianghui Xiao
  • , Han Koo Lee
  • , Piero Pianetta
  • , Peter Cloetens
  • , Jun Sik Lee
  • , Kejie Zhao
  • Feng Lin, Yijin Liu

Research output: Contribution to journalArticlepeer-review

224 Scopus citations

Abstract

The multiscale chemomechanical interplay in lithium-ion batteries builds up mechanical stress, provokes morphological breakdown, and leads to state of charge heterogeneity. Quantifying the interplay in complex composite electrodes with multiscale resolution constitutes a frontier challenge in precisely diagnosing the fading mechanism of batteries. In this study, hard X-ray phase contrast tomography, capable of nanoprobing thousands of active particles at once, enables an unprecedented statistical analysis of the chemomechanical transformation of composite electrodes under fast charging conditions. The damage heterogeneity is demonstrated to prevail at all length scales, which stems from the unbalanced electron conduction and ionic diffusion, and collectively leads to the nonuniform utilization of active particles spatially and temporally. This study highlights that the statistical mapping of the chemomechanical transformation offers a diagnostic method for the particles utilization and fading, hence could improve electrode formulation for fast-charging batteries.

Original languageEnglish
Article number1900674
JournalAdvanced Energy Materials
Volume9
Issue number25
DOIs
StatePublished - 5 Jul 2019
Externally publishedYes

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 7 - Affordable and Clean Energy
    SDG 7 Affordable and Clean Energy

Keywords

  • NMC cathode
  • X-ray phase contrast tomography
  • chemomechanical interplay
  • fast charging
  • finite elemental modeling
  • structural degradation

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