High-throughput superconducting $T_{\mathrm{c}}$ predictions through density of states rescaling

Fuente: arXiv
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Autori principali: Bozier, Kieran, Wang, Kang, Monserrat, Bartomeu, Pickard, Chris J.
Natura: Preprint
Pubblicazione: 2025
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author Bozier, Kieran
Wang, Kang
Monserrat, Bartomeu
Pickard, Chris J.
author_facet Bozier, Kieran
Wang, Kang
Monserrat, Bartomeu
Pickard, Chris J.
contents First principles computational methods can predict the superconducting critical temperature $T_{\mathrm{c}}$ of conventional superconductors through the electron-phonon spectral function. Full convergence of this quantity requires Brillouin zone integration on very dense grids, presenting a bottleneck to high-throughput screening for high $T_{\mathrm{c}}$ systems. In this work, we show that an electron-phonon spectral function calculated at low cost on a coarse grid yields accurate $T_{\mathrm{c}}$ predictions, provided the function is rescaled to correct for the inaccurate value of the density of states at the Fermi energy on coarser grids. Compared to standard approaches, the method converges rapidly and improves the accuracy of predictions for systems with sharp features in the density of states. This approach can be directly integrated into existing materials screening workflows, enabling the rapid identification of promising candidates that might otherwise be overlooked.
format Preprint
id arxiv_https___arxiv_org_abs_2508_18371
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle High-throughput superconducting $T_{\mathrm{c}}$ predictions through density of states rescaling
Bozier, Kieran
Wang, Kang
Monserrat, Bartomeu
Pickard, Chris J.
Superconductivity
Materials Science
Computational Physics
First principles computational methods can predict the superconducting critical temperature $T_{\mathrm{c}}$ of conventional superconductors through the electron-phonon spectral function. Full convergence of this quantity requires Brillouin zone integration on very dense grids, presenting a bottleneck to high-throughput screening for high $T_{\mathrm{c}}$ systems. In this work, we show that an electron-phonon spectral function calculated at low cost on a coarse grid yields accurate $T_{\mathrm{c}}$ predictions, provided the function is rescaled to correct for the inaccurate value of the density of states at the Fermi energy on coarser grids. Compared to standard approaches, the method converges rapidly and improves the accuracy of predictions for systems with sharp features in the density of states. This approach can be directly integrated into existing materials screening workflows, enabling the rapid identification of promising candidates that might otherwise be overlooked.
title High-throughput superconducting $T_{\mathrm{c}}$ predictions through density of states rescaling
topic Superconductivity
Materials Science
Computational Physics
url https://arxiv.org/abs/2508.18371