Hole-Doping Effect on Superconductivity in Compressed CeH$_{9}$ at High Pressure
Abstract
The experimental realization of high-temperature superconductivity in compressed hydrides HS and LaH at high pressures over 150 GPa has aroused great interest in reducing the stabilization pressure of superconducting hydrides. For cerium hydride CeH recently synthesized at 80100 GPa, our first-principles calculations reveal that the strongly hybridized electronic states of Ce 4 and H 1 orbitals produce the topologically nontrivial Dirac nodal lines around the Fermi energy , which are protected by crystalline symmetries. By hole doping, shifts down toward the topology-driven van Hove singularity to significantly increase the density of states, which in turn raises a superconducting transition temperature from 74 K up to 136 K at 100 GPa. The hole-doping concentration can be controlled by the incorporation of Ce ions with varying their percentages, which can be well electronically miscible with Ce atoms in the CeH matrix because both Ce and Ce behave similarly as cations. Therefore, the interplay of symmetry, band topology, and hole doping contributes to enhance in compressed CeH. This mechanism to enhance can also be applicable to another superconducting rare earth hydride LaH.
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}
}