Pressure effects on the unconventional superconductivity of the noncentrosymmetric LaNiC2
B. Wiendlocha, R. Szcz\k{e}\'sniak, A. P. Durajski, and M. Muras

TL;DR
This study combines ab initio calculations and Eliashberg theory to analyze pressure effects on LaNiC2's unconventional superconductivity, revealing pressure-dependent changes in electron-phonon coupling and suggesting a competing high-pressure phase.
Contribution
It provides a detailed first-principles analysis of LaNiC2's superconductivity under pressure, highlighting the role of Coulomb pseudopotential and electronic phase competition.
Findings
Superconducting parameters deviate from BCS predictions at zero pressure.
Electron-phonon coupling increases with pressure up to 15 GPa.
Disappearance of superconductivity at high pressure may be due to a new electronic phase.
Abstract
The unconventional superconductivity in the noncentrosymmetric LaNiC, and its evolution with pressure, is analyzed basing on the {\it ab initio} computations and the full Eliashberg formalism. First principles calculations of the electronic structure, phonons and the electron-phonon coupling are reported in the pressure range 0-15 GPa. The thermodynamic properties of the superconducting state were determined numerically solving the Eliashberg equations. We found that already at GPa, the superconducting parameters deviate from the BCS-type, and a large value of the Coulomb pseudopotential is required to get the critical temperature ~K consistent with experiment. If such is used, the Eliashberg formalism reproduces also the experimentally observed values of the superconducting order parameter, the electronic specific heat jump at the…
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