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Nonadiabatic superconductivity in a Li-intercalated hexagonal boron nitride bilayer.


ABSTRACT: When considering a 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 ??D/?F ? 0.46, where ? is the electron-phonon coupling constant, ?D is the Debye frequency, and ?F represents the Fermi energy. Due to nonadiabatic effects, the phonon-induced superconducting state in Li-hBN is characterized by much lower values of the critical temperature (T LOVC C ? {19.1, 15.5, 11.8} K, for ?* ? {0.1, 0.14, 0.2}, respectively) than would result from calculations not taking this effect into account (T ME C? {31.9, 26.9, 21} K). From the technological point of view, the low value of T C limits the possible applications of Li-hBN. The calculations were carried out under the classic Migdal-Eliashberg formalism (ME) and the Eliashberg theory with lowest-order vertex corrections (LOVC). We show that the vertex corrections of higher order (?3) lower the value of T LOVC C by a few percent.

SUBMITTER: Szewczyk KA 

PROVIDER: S-EPMC7418097 | biostudies-literature | 2020

REPOSITORIES: biostudies-literature

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Nonadiabatic superconductivity in a Li-intercalated hexagonal boron nitride bilayer.

Szewczyk Kamila A KA   Domagalska Izabela A IA   Durajski Artur P AP   Szczęśniak Radosław R  

Beilstein journal of nanotechnology 20200807


When considering a 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 λω<sub>D</sub>/ε<sub>F</sub> ≈ 0.46, where λ is the electron-phonon coupling constant, ω<sub>D</sub> is the Debye frequency, and ε<sub>F</sub> represents the Fermi energy. Due to nonadiabatic effects, the phonon-induced superconducting state in Li-hBN is characterized by much lower values of the  ...[more]

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