Signatures of non-adiabatic superconductivity in lithium-decorated graphene
Dominik Szcz\c{e}\'sniak, Rados{\l}aw Szcz\c{e}\'sniak

TL;DR
This study investigates the non-adiabatic effects in lithium-decorated graphene's superconductivity, revealing deviations from BCS theory and suggesting non-canonical superconducting behavior influenced by electron-phonon interactions.
Contribution
The paper applies the Migdal-Eliashberg formalism with vertex corrections to show non-adiabatic effects in LiC6, highlighting deviations from traditional BCS predictions.
Findings
Superconducting transition temperature remains around 6 K.
Superconducting gap ratio exceeds BCS estimates.
Non-adiabatic effects significantly influence pairing mechanisms.
Abstract
Recent experimental studies confirmed that a long searched conventional superconducting phase in graphene can be induced via lithium deposition. However, the canonical character of the lithium-decorated graphene (LiC) superconductor postulated therein, as defined by the Bardeen-Cooper-Schrieffer (BCS) theory, is ambiguous due to the moderate electron-phonon coupling constant and low Fermi energy in this material. Herein, this issue is addressed within the Migdal-Eliashberg formalism and beyond it via the first-order electron-phonon vertex corrections, to account for the potentially pivotal effects, hitherto not captured. The conducted analysis yields similar value of the metal-superconductor transition temperature as in the previous studies ( K), yet for a weaker depairing electron correlations, which magnitude in the non-adiabatic regime approaches predictions of…
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