Above 20K conventional superconductivity in Cerium

Fuente: arXiv
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Main Authors: Monish, Mohd, Mehta, Nikhlesh S, Garg, Mona, Sheet, Goutam
Format: Preprint
Published: 2025
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author Monish, Mohd
Mehta, Nikhlesh S
Garg, Mona
Sheet, Goutam
author_facet Monish, Mohd
Mehta, Nikhlesh S
Garg, Mona
Sheet, Goutam
contents A high superconducting critical temperature (Tc) under normal laboratory conditions in a material that is chemically simple and stable, like an elemental metal, is a hitherto unattained goal of modern science and technology. Certain elemental metals are known to display reasonably high Tc only under extraordinarily high pressures where their spectroscopic characterization and application are tightly restricted. Here we show that a Tc exceeding 20 K can be realized on pure elemental Ce under uniaxial pressure created simply by pressing a sharp metallic needle on the metal. This is a breakthrough because pure Ce does not superconduct under ambient conditions and the application of 54 GPa of hydrostatic pressure yields only a low Tc of 1.8 K in the metal. In addition, by driving the area under the needle in a mechanically controlled way to the ballistic transport regime, for the first time, we spectroscopically characterized the superconducting energy gap in a high-pressure superconducting phase and found that superconducting Ce respects the conventional Bardeen-Cooper-Shrieffer (BCS) theory.
format Preprint
id arxiv_https___arxiv_org_abs_2506_10670
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Above 20K conventional superconductivity in Cerium
Monish, Mohd
Mehta, Nikhlesh S
Garg, Mona
Sheet, Goutam
Superconductivity
A high superconducting critical temperature (Tc) under normal laboratory conditions in a material that is chemically simple and stable, like an elemental metal, is a hitherto unattained goal of modern science and technology. Certain elemental metals are known to display reasonably high Tc only under extraordinarily high pressures where their spectroscopic characterization and application are tightly restricted. Here we show that a Tc exceeding 20 K can be realized on pure elemental Ce under uniaxial pressure created simply by pressing a sharp metallic needle on the metal. This is a breakthrough because pure Ce does not superconduct under ambient conditions and the application of 54 GPa of hydrostatic pressure yields only a low Tc of 1.8 K in the metal. In addition, by driving the area under the needle in a mechanically controlled way to the ballistic transport regime, for the first time, we spectroscopically characterized the superconducting energy gap in a high-pressure superconducting phase and found that superconducting Ce respects the conventional Bardeen-Cooper-Shrieffer (BCS) theory.
title Above 20K conventional superconductivity in Cerium
topic Superconductivity
url https://arxiv.org/abs/2506.10670