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Accelerating Discovery of Metal-Insulator Transition Compounds Using Physics-Informed Machine Learning

Materials Science 2025-06-17 v2 Strongly Correlated Electrons

Abstract

Metal-insulator transition (MIT) materials are a useful platform for emerging microelectronic, optoelectronic, and neuromorphic devices, but their discovery is hindered by the high computational cost of electronic structure modeling, the complexity of underlying mechanisms, and the challenges of experimental validation. Here, we present a physics-informed machine learning framework that accelerates the discovery of thermally driven MIT materials. Using a trained classifier, we screen a crystal structure database to identify promising candidates for higher fidelity simulations. We focus on Ca2_2Fe3_3O8_8, CaCo2_2O4_4, and CaMn2_2O4_4, and use density functional theory (DFT) to determine their electronic and magnetic ground states and assess their microscopic MIT mechanisms. We further apply machine learning regression models to estimate their transition temperatures and employ synthesis prediction tools to identify likely precursors and reaction routes. This integrated approach reduces the time and effort required to identify, understand, and synthesize new MIT materials, providing a generalizable pathway for accelerating correlated quantum materials discovery.

Keywords

Cite

@article{arxiv.2404.08653,
  title  = {Accelerating Discovery of Metal-Insulator Transition Compounds Using Physics-Informed Machine Learning},
  author = {Alexandru B. Georgescu and Peiwen Ren and Harshul Bhatt and Christopher Karpovich and Bipasa Samanta and Elsa Olivetti and James M. Rondinelli},
  journal= {arXiv preprint arXiv:2404.08653},
  year   = {2025}
}
R2 v1 2026-06-28T15:52:47.890Z