English

Phonon-mediated superconductivity in two-dimensional hydrogenated phosphorus carbide: HPC$_{3}$

Superconductivity 2022-08-04 v2 Materials Science

Abstract

In the recent years, three-dimensional (3D) high-temperature superconductors at ultrahigh pressure have been reported, typical examples are the polyhydrides H3_{3}S, LaH10_{10}, and YH9_{9}, etc. To find high-temperature superconductors in two-dimensional (2D) at atmosphere pressure is another research hotspot. Here, we investigated the possible superconductivity in a hydrogenated monolayer phosphorus carbide based on first-principles calculations. The results reveal that monolayer PC3_{3} transforms from a semiconductor to a metal after hydrogenation. Interestingly, the C-π\pi-bonding band contributes most to the states at the Fermi level. Based on the electron-phonon coupling mechanism, it is found that the electron-phonon coupling constant of HPC3_{3} is 0.95, which mainly origins from the coupling of C-π\pi electrons with the in-plane vibration modes of C and H. The calculated critical temperature TcT_{c} is 31.0 K, which is higher than most of the 2D superconductors. By further applying biaxial tensile strain of 3%\%, the TcT_{c} can be boosted to 57.3 K, exceeding the McMillan limit. Thus, hydrogenation and strain are effective ways for increasing the superconducting TcT_{c} of 2D materials.

Keywords

Cite

@article{arxiv.2112.07482,
  title  = {Phonon-mediated superconductivity in two-dimensional hydrogenated phosphorus carbide: HPC$_{3}$},
  author = {Ya-Ping Li and Liu Yang and Hao-Dong Liu and Na Jiao and Meiyan Ni and Ning Hao and Hong-Yan Lu and Ping Zhang},
  journal= {arXiv preprint arXiv:2112.07482},
  year   = {2022}
}