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Published on: August 2, 2019
Nonadiabatic superconductivity in a Li-intercalated hexagonal boron nitride bilayer
Kamila A Szewczyk1, Izabela A Domagalska2, Artur P Durajski3
1Division of Theoretical Physics, Jan Długosz University in Częstochowa, Ave. Armii Krajowej 13/15, 42-200 Częstochowa, Poland.
Vertex corrections are crucial for understanding superconductivity in Li-intercalated hexagonal boron nitride (Li-hBN). These effects significantly reduce the critical temperature, impacting potential technological applications.
Area of Science:
- Condensed Matter Physics
- Materials Science
- Superconductivity
Background:
- Li-intercalated hexagonal boron nitride (Li-hBN) is a material with potential superconducting properties.
- Electron-phonon interactions play a critical role in mediating superconductivity.
- The Migdal-Eliashberg formalism is a standard approach for calculating superconducting properties.
Purpose of the Study:
- To investigate the impact of vertex corrections on the electron-phonon interaction in Li-hBN.
- To accurately determine the superconducting critical temperature (Tc) of Li-hBN.
- To assess the technological feasibility of Li-hBN based on its superconducting properties.
Main Methods:
- Calculations performed using the Migdal-Eliashberg (ME) formalism.
- Inclusion of lowest-order vertex corrections (LOVC) in the Eliashberg theory.
- Analysis of the electron-phonon coupling constant (λ), Debye frequency (ωD), and Fermi energy (εF).
Main Results:
- The ratio λωD/εF ≈ 0.46 indicates that vertex corrections are essential for Li-hBN.
- Nonadiabatic effects due to vertex corrections significantly lower the critical temperature (Tc) compared to calculations without them.
- Calculated Tc values with LOVC range from 11.8 K to 19.1 K, while ME calculations predict higher values (21 K to 31.9 K).
- Higher-order vertex corrections (λ^3) further reduce Tc by a few percent.
Conclusions:
- Vertex corrections are indispensable for accurate predictions of superconductivity in Li-hBN.
- The reduced critical temperature due to these effects limits the practical applications of Li-hBN.
- Further research may explore modifications to enhance the superconducting properties of Li-hBN.
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