Chemical physics of superconductivity in layered yttrium carbide halides from first principles
Abstract
We perform a thorough first-principles study on superconductivity in yttrium carbide halide YC (=Cl, Br, I) whose maximum transition temperature () amounts to 10 K. A detailed analysis on the optimized crystal structures reveals that the YC blocks are compressed uniaxially upon the halogen substitution from Cl, Br to I, contrary to the monotonic expansion of the lattice vectors. With a nonempirical method based on the density functional theory for superconductors within the conventional phonon mechanism, we successfully reproduce the halogen dependence of . Anomalously enhanced coupling of one C libration mode is observed in YIC, which imply possible departure from the conventional pairing picture. Utilizing the Wannier representation of the electron-phonon coupling, we show that the halogen electronic orbitals and ionic vibrations scarcely contribute to the superconducting pairing. The halogen dependence of this system is hence an indirect effect of the halogen ions through the uniaxial compressive force on the superconducting YC blocks. We thus establish a quantitatively reliable picture of the superconducting physics of this system, extracting a unique effect of the atomic substitution which is potentially applicable to other superconductors.
Keywords
Cite
@article{arxiv.2103.05312,
title = {Chemical physics of superconductivity in layered yttrium carbide halides from first principles},
author = {Ryosuke Akashi and Ryotaro Arita and Chao Zhang and K. Tanaka and J. S. Tse},
journal= {arXiv preprint arXiv:2103.05312},
year = {2021}
}
Comments
13 pages, 9 figures, 5 tables