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March 28, 2026ACS Energy Letters0 citations

Conductivity-Driven Origin of the Limiting Current in Concentrated Electrolytes

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EAEmily E. AbdoSHSarah A. HesseADAlexander V. Dudchenko

Key Points

  • The study aims to investigate how conductivity affects the limiting current in concentrated electrolytes.
  • Utilized operando X-ray transmission imaging to observe concentration profiles.
  • Measured spatiotemporal salt concentration in a lithium–indium symmetric cell.
  • Mapped electric potential contributions of ohmic effects and overpotential.
  • Identified that conductivity drop at the positive electrode drives electric potential divergence.
  • Challenged the thermodynamic solubility limit explanation for limiting current.

Abstract

Next-generation electrolyte materials are hindered by their ability to support high currents essential for fast-charge and high-power battery applications. The maximum current supported by an electrolyte, the limiting current, is dictated by the formation of concentration gradients across the electrolyte under an electric field. Most of the literature attributes the onset of the limiting current in concentrated electrolytes to the salt concentration at the positive electrode approaching the solubility limit. Here, we leverage operando X-ray transmission imaging to measure spatiotemporal salt concentration profiles of a polymer electrolyte in a lithium–indium symmetric cell at a current exceeding the limiting current. The measurement of concentration profiles enables mapping the spatiotemporal electric potential, which comprises an ohmic contribution, governed by conductivity, and an overpotential related to maintaining concentration gradients. We find that a precipitous drop in conductivity at the positive electrode drives the divergence of electric potential, rather than a thermodynamic solubility limit.

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Cite This Study

Abdo et al. (2026) studied this question.

synapsesocial.com/papers/69c772158bbfbc51511e2588https://doi.org/10.1021/acsenergylett.6c00220
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