Comment on "Coexistence of superconductivity and topological aspects in beryllenes", Materials Today Physics 38, 101257 (2023)

Fuente: arXiv
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Main Authors: Petrov, Mikhail, Milosevic, Milorad V.
Format: Preprint
Published: 2024
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author Petrov, Mikhail
Milosevic, Milorad V.
author_facet Petrov, Mikhail
Milosevic, Milorad V.
contents In a recent publication by Li $\textit{et al.}$, two phases of beryllene - $α$ and $β$ - were predicted to be single-gap superconductors with critical temperatures of 9.9 K and 12.6 K respectively. Moreover, the $α$-beryllene was shown to host type-I Dirac fermions with the existence of nontrivial edge states. We observe significantly weaker superconducting properties of both beryllene configurations. We argue that the superconducting gap evolution with temperature, as shown in Figure 5 (b and d) of Li $\textit{et al.}$, exhibits clearly unphysical trends with increasing temperature, leading to significantly overestimated values of the critical temperature and erroneous conclusions concerning the two-gap superconducting nature of $β$-beryllene. On a positive note, we report the value of the gap in the Dirac cone of the topological states of interest that exceeds the temperature range of superconductivity in $α$-beryllene, supporting the coexistence of topological features and superconductivity in this material.
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spellingShingle Comment on "Coexistence of superconductivity and topological aspects in beryllenes", Materials Today Physics 38, 101257 (2023)
Petrov, Mikhail
Milosevic, Milorad V.
Superconductivity
In a recent publication by Li $\textit{et al.}$, two phases of beryllene - $α$ and $β$ - were predicted to be single-gap superconductors with critical temperatures of 9.9 K and 12.6 K respectively. Moreover, the $α$-beryllene was shown to host type-I Dirac fermions with the existence of nontrivial edge states. We observe significantly weaker superconducting properties of both beryllene configurations. We argue that the superconducting gap evolution with temperature, as shown in Figure 5 (b and d) of Li $\textit{et al.}$, exhibits clearly unphysical trends with increasing temperature, leading to significantly overestimated values of the critical temperature and erroneous conclusions concerning the two-gap superconducting nature of $β$-beryllene. On a positive note, we report the value of the gap in the Dirac cone of the topological states of interest that exceeds the temperature range of superconductivity in $α$-beryllene, supporting the coexistence of topological features and superconductivity in this material.
title Comment on "Coexistence of superconductivity and topological aspects in beryllenes", Materials Today Physics 38, 101257 (2023)
topic Superconductivity
url https://arxiv.org/abs/2407.18254