Prediction of Ambient Pressure Conventional Superconductivity above 80K in Thermodynamically Stable Hydride Compounds

ORAL

Abstract

The primary challenge in the field of high-temperature superconductivity in hydrides is to achieve a superconducting state at ambient pressure rather than the extreme pressures that have been required in experiments so far. Here, we propose a family of compounds, of composition Mg2XH6 with X=Rh, Ir, Pd, or Pt, that achieves this goal. These materials were identified by scrutinizing more than a million compounds using a machine-learning accelerated high-throughput workflow. They are thermodynamically stable, indicating that they are serious candidates for experimental synthesis. We predict that their superconducting transition temperatures are in the range of 45-80K, or even above 100K with appropriate electron doping of the Pt compound. These results indicate that, although very rare, high-temperature superconductivity in thermodynamically stable hydrides is achievable at room pressure.

* T.F.T.C acknowledges financial support from FCT - Fundação para a Ciência e Tecnologia, Portugal (projects UIDB/04564/2020 and 2022.09975.PTDC) and the Laboratory for Advanced Computing at University of Coim- bra for providing HPC resources that have contributed to the research results reported within this paper. M.A.L.M. acknowledges partial funding from Horizon Europe MSCA Doctoral network grant n.101073486, EU- SpecLab, funded by the European Union, and from the Keele Foundation. Y.-W.F. and I.E. received funding from the European Research Council (ERC) under the European Union's Horizon 2020 research and innovation programme (Grant Agreement No. 802533) and acknowledge PRACE for awarding access to the EuroHPC super- computer LUMI located in CSC's data center in Kajaani, Finland through EuroHPC Joint Undertaking (EHPC- REG-2022R03-090). I.E. also acknowledges funding from the Spanish Ministry of Science and Innovation (Grant No. PID2022-142861NA-I00) and the Department of Ed- ucation, Universities and Research of the Basque Govern- ment and the University of the Basque Country (Grant No. IT1527-22).

Publication: https://arxiv.org/abs/2310.06804

Presenters

  • Ion Errea

    University of the Basque Country UPV/EH

Authors

  • Ion Errea

    University of the Basque Country UPV/EH

  • Antonio Sanna

    Max Plank Institute of Microstructure Physics

  • Tiago F. T. Cerqueira

    University of Coimbra

  • Yue-Wen Fang

    Centro de Física de Materiales (CSIC-UPV/EHU))

  • Miguel A. L. Marques

    Ruhr-Universität Bochum