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Computational Materials Discovery for Lanthanide Hydrides at high pressure: predicting High Temperature superconductivity

Superconductivity 2021-09-09 v2 Materials Science Strongly Correlated Electrons

Abstract

Hydrogen-rich superhydrides are believed to be very promising high-Tc_c superconductors, with experimentally observed critical temperatures near room temperature, as shown in recently discovered lanthanide superhydrides at very high pressures, e.g. LaH10_{10} at 170 GPa and CeH9_9 at 150 GPa. With the motivation of discovering new hydrogen-rich high-Tc_c superconductors at lowest possible pressure, quantitative theoretical predictions are needed. In these promising compounds, superconductivity is mediated by the highly energetic lattice vibrations associated with hydrogen and their interplay with the electronic structure, requiring fine descriptions of the electronic properties, notoriously challenging for correlated ff systems. In this work, we propose a first-principles calculation platform with the inclusion of many-body corrections to evaluate the detailed physical properties of the Ce-H system and to understand the structure, stability and superconductivity of CeH9_9 at high pressure. We report how the prediction of Tc_c is affected by the hierarchy of many-body corrections, and obtain a compelling increase of Tc_c at the highest level of theory, which goes in the direction of experimental observations. Our findings shed a significant light on the search for superhydrides in close similarity with atomic hydrogen within a feasible pressure range. We provide a practical platform to further investigate and understand conventional superconductivity in hydrogen rich superhydrides.

Keywords

Cite

@article{arxiv.2107.12316,
  title  = {Computational Materials Discovery for Lanthanide Hydrides at high pressure: predicting High Temperature superconductivity},
  author = {Evgeny Plekhanov and Zelong Zhao and Francesco Macheda and Yao Wei and Nicola Bonini and Cedric Weber},
  journal= {arXiv preprint arXiv:2107.12316},
  year   = {2021}
}

Comments

7 pages, 7 figures

R2 v1 2026-06-24T04:32:06.212Z