Capacity recovery by transient voltage pulse in silicon-anode batteries

  • Yufei Yang
  • , Srija Biswas
  • , Rong Xu
  • , Xin Xiao
  • , Xin Xu
  • , Pu Zhang
  • , Huaxin Gong
  • , Xueli Zheng
  • , Yucan Peng
  • , Junyan Li
  • , Huayue Ai
  • , Yecun Wu
  • , Yusheng Ye
  • , Xin Gao
  • , Chad Serrao
  • , Wenbo Zhang
  • , Philaphon Sayavong
  • , Zhuojun Huang
  • , Zhouyi Chen
  • , Yi Cui
  • Rafael A. Vilá, David T. Boyle, Yi Cui

Research output: Contribution to journalArticlepeer-review

56 Scopus citations

Abstract

In the quest for high-capacity battery electrodes, addressing capacity loss attributed to isolated active materials remains a challenge. We developed an approach to substantially recover the isolated active materials in silicon electrodes and used a voltage pulse to reconnect the isolated lithium-silicon (LixSi) particles back to the conductive network. Using a 5-second pulse, we achieved >30% of capacity recovery in both Li-Si and Si–lithium iron phosphate (Si-LFP) batteries. The recovered capacity sustains and replicates through multiple pulses, providing a constant capacity advantage. We validated the recovery mechanism as the movement of the neutral isolated LixSi particles under a localized nonuniform electric field, a phenomenon known as dielectrophoresis.

Original languageEnglish
Pages (from-to)322-327
Number of pages6
JournalScience
Volume386
Issue number6719
DOIs
StatePublished - 18 Oct 2024
Externally publishedYes

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