English

Nonadiabatic superconductivity in Li-intercalated hexagonal boron nitride bilayer

Superconductivity 2020-01-24 v1

Abstract

In the case of Li-intercalated hexagonal boron nitride bilayer (Li-hBN), the vertex corrections of electron-phonon interaction cannot be omitted. This is evidenced by the very high value of the ratio λωD/εF0.46\lambda\omega_{D}/\varepsilon_{F}\sim 0.46, where λ\lambda is the electron-phonon coupling constant, ωD\omega_{D} is the Debye frequency, and the symbol εF\varepsilon_{F} represents the Fermi energy. Due to the nonadiabatic effects, the phonon-induced superconducting state in Li-hBN is characterized by the much lower value of critical temperature (TCLOVC{19.1,15.5,11.8}T^{\rm LOVC}_{C}\in\{ 19.1, 15.5, 11.8\} K, for μ{0.1,0.14,0.2}\mu^{\star}\in \{0.1, 0.14, 0.2\}), than would result from calculations not taking this effect into account: TCME{31.9,26.9,21}T^{\rm ME}_{C}\in\{ 31.9, 26.9, 21\} K. From the technological point of view, the low value of TCT_{C} limits the possible applications of Li-hBN superconducting properties. The calculations were carried out under the classic Migdal-Eliashberg formalism (ME) and the Eliashberg theory with the lowest-order vertex corrections (LOVC).

Keywords

Cite

@article{arxiv.2001.08732,
  title  = {Nonadiabatic superconductivity in Li-intercalated hexagonal boron nitride bilayer},
  author = {K. A. Szewczyk and I. A. Domagalska and A. P. Durajski and R. Szczęśniak},
  journal= {arXiv preprint arXiv:2001.08732},
  year   = {2020}
}

Comments

8 pages, 5 figures

R2 v1 2026-06-23T13:19:15.378Z