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January 23, 2026Advanced Materials5 citations

Lithium‐Ion Conduction Through Frozen Phase of Organic Electrolytes for Lithium Batteries

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DCDo Sol CheongMKMinjun KwonPJPil‐Su Jung

Key Points

  • This research investigates the ionic conduction properties of frozen organic electrolytes in lithium batteries.
  • Analyzed the frozen phases of organic ice electrolytes as potential lithium conductors.
  • Measured ionic conductivity and transference number for room-temperature ice-phase electrolyte EC 0.2T.
  • Tested performance of frozen electrolyte in lithium iron phosphate cells.
  • Frozen EC 0.2T showed high ionic conductivity of approximately 0.64 mS cm − 1.
  • The transference number for Li + was found to be around 0.8.
  • Cells utilizing the frozen electrolyte delivered capacities comparable to liquid electrolytes and exhibited prolonged cycle life.

Abstract

ABSTRACT Organic ice electrolytes in their frozen states are presented as molecular‐solid Li + conductors for lithium metal batteries (LMBs), challenging the notion that frozen electrolytes lack ionic conductivity. Ethylene carbonate, a cyclic carbonate, was predicted to form Li + ‐conductive channels in its frozen crystal structure. A room‐temperature ice‐phase electrolyte, EC 0.2T (0.2 m LiTFSI in ethylene carbonate), exhibited a high ionic conductivity (∼0.64 mS cm − 1 ) and a high Li + transference number (∼0.8) via hopping mechanism through solid matrix formed by immobilized solvent molecules. Frozen EC 0.2T delivered liquid‐electrolyte‐level capacity in LFP||Li cells and, more importantly, significantly extended cycle life with a solvent‐derived, Li 2 O‐rich solid electrolyte interphase.

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Cite This Study

Cheong et al. (2026) studied this question.

synapsesocial.com/papers/69730f9fc8125b09b0d1f5c9https://doi.org/10.1002/adma.202512268
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