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Updated: Jan 9, 2026

Characterization of Electrode Materials for Lithium Ion and Sodium Ion Batteries Using Synchrotron Radiation Techniques
Published on: November 11, 2013
A literature-derived dataset of migration barriers for quantifying ionic transport in battery materials
Reshma Devi1, Avaneesh Balasubramanian1,2, Keith T Butler3
1Department of Materials Engineering, Indian Institute of Science, Bengaluru, 560012, Karnataka, India.
None:
The rate performance of any electrode or solid electrolyte material used in a battery is critically dependent on the migration barrier (Em) governing the motion of the intercalant ion, which is a difficult-to-estimate quantity both experimentally and computationally. The foundation for constructing and validating accurate machine learning (ML) models that are capable of predicting Em, and hence accelerating the discovery of novel electrodes and solid electrolytes, lies in the availability of high-quality dataset(s) containing Em. Addressing this critical requirement, we present a comprehensive dataset comprising 621 distinct literature-reported Em values calculated using density functional theory based nudged elastic band computations, across 443 compositions and 27 structural groups consisting of various compounds that have been explored as electrodes or solid electrolytes in batteries. Our dataset includes compositions corresponding to fully charged and/or discharged states of electrodes, with intermediate compositions incorporated in select instances. Crucially, for each compound, our dataset provides structural information, including the initial and final positions of the migrating ion, along with its corresponding Em in easy-to-use .xlsx and JSON formats. We envision our dataset to be highly useful for the scientific community, facilitating the development of advanced ML models that can predict Em precisely and accelerate materials discovery.
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