English

Hole-Doping Effect on Superconductivity in Compressed CeH$_{9}$ at High Pressure

Superconductivity 2021-07-21 v2

Abstract

The experimental realization of high-temperature superconductivity in compressed hydrides H3_3S and LaH10_{10} at high pressures over 150 GPa has aroused great interest in reducing the stabilization pressure of superconducting hydrides. For cerium hydride CeH9_9 recently synthesized at 80-100 GPa, our first-principles calculations reveal that the strongly hybridized electronic states of Ce 4ff and H 1ss orbitals produce the topologically nontrivial Dirac nodal lines around the Fermi energy EFE_F, which are protected by crystalline symmetries. By hole doping, EFE_F shifts down toward the topology-driven van Hove singularity to significantly increase the density of states, which in turn raises a superconducting transition temperature TcT_c from 74 K up to 136 K at 100 GPa. The hole-doping concentration can be controlled by the incorporation of Ce3+^{3+} ions with varying their percentages, which can be well electronically miscible with Ce atoms in the CeH9_9 matrix because both Ce3+^{3+} and Ce behave similarly as cations. Therefore, the interplay of symmetry, band topology, and hole doping contributes to enhance TcT_c in compressed CeH9_9. This mechanism to enhance TcT_c can also be applicable to another superconducting rare earth hydride LaH10_{10}.

Keywords

Cite

@article{arxiv.2101.03481,
  title  = {Hole-Doping Effect on Superconductivity in Compressed CeH$_{9}$ at High Pressure},
  author = {Chongze Wang and Shuyuan Liu and Hyunsoo Jeon and Seho Yi and Yunkyu Bang and Jun-Hyung Cho},
  journal= {arXiv preprint arXiv:2101.03481},
  year   = {2021}
}
R2 v1 2026-06-23T21:57:29.452Z