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LiCondAI: A Machine Learning Model for Predicting Lithium-Ion Conductivity in Solid Electrolytes

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Figshare2025-08-19 更新2026-04-28 收录
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https://figshare.com/articles/dataset/LiCondAI_A_Machine_Learning_Model_for_Predicting_Lithium-Ion_Conductivity_in_Solid_Electrolytes/29940488
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Significant momentum is driving advancements in solid-state battery (SSB) technology, where the choice of electrolyte plays a key role in determining cell performance. In this study, an advanced machine learning ensemble model, called LiCondAI (lithium-ion conductivity using Artificial Intelligence), was developed to predict the ionic conductivity (IC) of solid electrolytes (SEs) in solid-state batteries (SSBs). LiCondAI combines the predictive capabilities of three modelsXGBoost, Gradient Boosting, and Random Forestusing a stacking regressor mechanism, achieving 97% accuracy in predicting IC. The proposed model, LiCondAI, accurately predicts IC in SEs for lithium-ion and lithium metal SSBs. LiCondAI is a useful platform for examining the behavior of SEs in SSBs and serves as a tool for guiding the design of new electrolytes for SSBs.
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2025-08-19
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