English

First-principles exploration of superconductivity in intercalated bilayer borophene phases

Superconductivity 2024-07-23 v2 Materials Science

Abstract

We explore the emergence of phonon-mediated superconductivity in bilayer borophenes by controlled intercalation with elements from the groups of alkali, alkaline-earth, and transition metals, using systematic first-principles and Eliashberg calculations. We show that the superconducting properties are primarily governed by the interplay between the out-of-plane (pzp_{z}) boron states and the partially occupied in-plane (s+px,ys+p_{x,y}) bonding states at the Fermi level. Our Eliashberg calculations indicate that intercalation with alkaline-earth elements leads to the highest superconducting critical temperatures (TcT_{c}). Specifically, Be in δ4\delta_{4}, Mg in χ3\chi_{3}, and Ca in the kagome bilayer borophene demonstrate superior performance with TcT_{c} reaching up to 58~K. Our study therefore reveals that intercalated bilayer borophene phases are not only more resilient to chemical deterioration, but also harbor enhanced TcT_{c} values compared to their monolayer counterparts, underscoring their substantial potential for the development of boron-based two-dimensional superconductors.

Keywords

Cite

@article{arxiv.2312.07310,
  title  = {First-principles exploration of superconductivity in intercalated bilayer borophene phases},
  author = {Božidar N. Šoškić and Jonas Bekaert and Cem Sevik and Željko Šljivančanin and Milorad V. Milošević},
  journal= {arXiv preprint arXiv:2312.07310},
  year   = {2024}
}