The maximum Tc of conventional superconductors at ambient pressure

K Kun Gao T Tiago F. T. Cerqueira A Antonio Sanna Y Yue-Wen Fang Đorđe Dangić I Ion Errea H Hai-Chen Wang S Silvana Botti M Miguel A. L. Marques

Abstract

Abstract The theoretical maximum critical temperature (T c) for conventional superconductors at ambient pressure remains a fundamental question in condensed matter physics. Through analysis of electron-phonon calculations for over 20,000 metals, we critically examine this question. We find that while hydride metals can exhibit maximum phonon frequencies of more than 5000 K, the crucial logarithmic average frequency $${\omega }_{\log }$$ ω log rarely exceeds 1800 K. Our data reveals an inherent trade-off between $${\omega }_{\log }$$ ω log and the electron-phonon coupling constant λ, suggesting that the optimal Eliashberg function that maximizes T c is unphysical. Based on our calculations, we identify Li2AgH6 and its sibling Li2AuH6 as theoretical materials that likely approach the practical limit for conventional superconductivity at ambient pressure. Analysis of thermodynamic stability indicates that compounds with higher predicted T c values are increasingly unstable, making their synthesis challenging. While fundamental physical laws do not strictly limit T c to low-temperatures, our analysis suggests that achieving room-temperature conventional superconductivity at ambient pressure is extremely unlikely.

Article Details

Volume / Issue Vol. 16, Issue 1
Published September 10, 2025
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (9)

K

Kun Gao

T

Tiago F. T. Cerqueira

A

Antonio Sanna

Y

Yue-Wen Fang

Đorđe Dangić

I

Ion Errea

H

Hai-Chen Wang

S

Silvana Botti

M

Miguel A. L. Marques