English

Active learning and element embedding approach in neural networks for infinite-layer versus perovskite oxides

Superconductivity 2023-02-02 v1 Materials Science

Abstract

Combining density functional theory simulations and active learning of neural networks, we explore formation energies of oxygen vacancy layers, lattice parameters, and their correlations in infinite-layer versus perovskite oxides across the periodic table, and place the superconducting nickelate and cuprate families in a comprehensive statistical context. We show that neural networks predict these observables with high precision, using only 30-50% of the data for training. Element embedding autonomously identifies concepts of chemical similarity between the individual elements in line with human knowledge. Based on the fundamental concepts of entropy and information, active learning composes the training set by an optimal strategy without a priori knowledge and provides systematic control over the prediction accuracy. This offers key ingredients to considerably accelerate scans of large parameter spaces and exemplifies how artificial intelligence may assist on the quantum scale in finding novel materials with optimized properties.

Keywords

Cite

@article{arxiv.2104.02529,
  title  = {Active learning and element embedding approach in neural networks for infinite-layer versus perovskite oxides},
  author = {Armin Sahinovic and Benjamin Geisler},
  journal= {arXiv preprint arXiv:2104.02529},
  year   = {2023}
}

Comments

4 pages, 5 figures

R2 v1 2026-06-24T00:53:19.235Z