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Tracking Spatiotemporal Electric Potential in Batteries Using High-Resolution Operando X-ray Transmission Imaging

作者:Emily E. Abdo, Vivaan Patel, Sarah A. Hesse, Alexander V. Dudchenko, Ross Arthur, Christopher J. Takacs, Nitash P. Balsara · 发表于:The Journal of Physical Chemistry C · 年份:2025 · DOI:10.1021/acs.jpcc.5c05969 · 被引用次数:4 · 研究领域:Advanced Battery Technologies Research、Particle Detector Development and Performance、Electrical and Bioimpedance Tomography

The formation of significant concentration gradients across electrolytes in batteries affects the rate at which electrochemical reactions occur. In this work, we use high-resolution operando X-ray transmission imaging to capture spatiotemporal salt concentration profiles c ( x, t ) in a symmetric cell comprising a polymer electrolyte sandwiched between two lithium–indium alloy electrodes during a constant-current experiment followed by open-circuit relaxation. The decay of open-circuit potential is related to the concentration dependence of the potential across concentration cells, U . We show how operando c ( x, t ) data can be used to calculate the spatiotemporal electric potential “inside” the polarized electrolyte. We track the spatial- and time-dependent cell potential during the constant-current step and distinguish its two contributions: a concentration overpotential governed by U . and an ohmic contribution governed by ionic conductivity. Over most of the time window, the concentration overpotential dominates. At steady state, it is a factor of 7 larger than the ohmic contribution. Such findings indicate that efforts to design new polymer electrolytes should focus on minimizing concentration gradients.