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On-demand capacity extraction through thermo-electrochemical hysteresis in metastable Li-Cu alloy

  • Jun Ho Lee
  • , Wenbo Zhang
  • , Yusheng Ye
  • , Sarah E. Holmes
  • , Eder G. Lomeli
  • , Sanzeeda Baig Shuchi
  • , Sang Cheol Kim
  • , Mun Sek Kim
  • , Junyoung Lee
  • , Il Rok Choi
  • , Donglin Li
  • , Huayue Ai
  • , Philaphon Sayavong
  • , Solomon T. Oyakhire
  • , Malhar Kute
  • , Thomas P. Devereaux
  • , Yi Cui*
  • *Corresponding author for this work
  • Stanford University
  • SLAC National Accelerator Laboratory

Research output: Contribution to journalArticlepeer-review

Abstract

Metastable states provide unique opportunities to access functional materials inaccessible through conventional equilibrium pathways. Here, we employ this path dependency to enable safe storage and supplementation of capacity in lithium (Li) batteries, compensating for irreversible loss of Li caused by its high reactivity. We introduce a strategy of storing Li as a metastable Li-Cu alloy phase with characteristic thermo-electrochemical hysteresis—the phase is accessible only through a thermal process, inhibiting electrochemical re-alloying with Cu during cycling. The Li-Cu current collector (CC) demonstrates on-demand capacity extraction of up to 2 mAh cm−2 for extended cycle life in Li batteries. The high extraction potential of the Li-Cu alloy (1.2 V vs. Li/Li+) allows intentional activation by a designed protocol while otherwise remaining inactive within the conventional operating window. This approach transforms CCs into a Li reservoir with on-demand capability via hysteretic pathways, offering a promising design platform for high-energy-density batteries.

Original languageEnglish
Article number102632
JournalJoule
DOIs
Publication statusAccepted/In press - 2026
Externally publishedYes

Keywords

  • Li reservoir
  • lithium batteries
  • metastable phases
  • on-demand extraction
  • pathway-dependent synthesis

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