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April 16, 2026ACS Applied Materials & Interfaces0 citations

Operando Depth-Resolved Measurement of Solvation Entropy, Interfacial Transport, and Charge-Transfer Kinetics in Lithium-Ion Batteries

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DCDivya ChaliseSLSean LubnerSKSumanjeet Kaur

Key Points

  • The aim is to develop a method to measure key interfacial properties at buried lithium-ion battery interfaces in real-time.
  • Developed multiharmonic electro-thermal spectroscopy (METS) for operando measurements
  • Conducted depth-resolved assessments at electrode-electrolyte interfaces
  • Leveraged frequency-dependent thermal-wave sensing and modeling for diagnostics
  • Validated METS findings against traditional electrochemical impedance spectroscopy (EIS)
  • Successfully measured solvation entropy and interfacial transport resistance in real-time
  • Identified charge-transfer resistance specific to individual electrodes
  • Provided new insights crucial for understanding battery degradation mechanisms
  • Enabled rapid innovation in energy storage system design

Abstract

Understanding and improving the performance and longevity of lithium-ion batteries critically depends on insight into the dynamic processes occurring at buried electrode-electrolyte interfaces. However, direct, depth-resolved, and operando diagnosis of these interfaces remains a longstanding challenge due to their inaccessibility beneath bulk materials, the limitations of conventional surface- and bulk-sensitive characterization tools, and the difficulty of maintaining realistic cell environments during measurement. These challenges have made it nearly impossible to uniquely resolve important interfacial properties such as charge transfer resistance, SEI (solid electrolyte interphase) resistance, and solvation entropy at the individual electrode interfaces within a working cell, information that is essential for mechanistic insight and accelerated battery design. Here, we report the development of multiharmonic electro-thermal spectroscopy (METS), an operando technique that enables depth-resolved measurement of solvation entropy, interfacial transport resistance, charge-transfer resistance, and SEI resistance at individual electrode-electrolyte interfaces within practical lithium-ion batteries. By leveraging frequency-dependent, thermal-wave sensing and interface-specific modeling, METS uniquely attributes interfacial properties to specific electrodes, as validated by comparison with traditional electrochemical impedance spectroscopy (EIS). The ability to spatially and temporally resolve interfacial processes in real time provides new diagnostic capabilities that are crucial for mechanistic studies of battery degradation and for the rapid development of next-generation energy storage systems.

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Cite This Study

Chalise et al. (2026) studied this question.

synapsesocial.com/papers/69e07bc12f7e8953b7cbd63fhttps://doi.org/10.1021/acsami.5c15964
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