Elastocaloric determination of the phase diagram of Sr2RuO4

You-sheng Li, Markus Garst, Jörg Schmalian, Sayak Ghosh, Naoki Kikugawa, Dmitry A. Sokolov, Clifford W. Hicks, Fabian Jerzembeck, Matthias S. Ikeda, Zhenhai Hu, B. J. Ramshaw, Andreas W. Rost, Michael Nicklas*, Andrew P. Mackenzie*

*Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

24 Downloads (Pure)

Abstract

One of the main developments in unconventional superconductivity in the past two decades has been the discovery that most unconventional superconductors form phase diagrams that also contain other strongly correlated states. Many systems of interest are therefore close to more than one instability, and tuning between the resultant ordered phases is the subject of intense research1. In recent years, uniaxial pressure applied using piezoelectric-based devices has been shown to be a particularly versatile new method of tuning2,3, leading to experiments that have advanced our understanding of the fascinating unconventional superconductor Sr2RuO4 (refs. 4,5,6,7,8,9). Here we map out its phase diagram using high-precision measurements of the elastocaloric effect in what we believe to be the first such study including both the normal and the superconducting states. We observe a strong entropy quench on entering the superconducting state, in excellent agreement with a model calculation for pairing at the Van Hove point, and obtain a quantitative estimate of the entropy change associated with entry to a magnetic state that is observed in proximity to the superconductivity. The phase diagram is intriguing both for its similarity to those seen in other families of unconventional superconductors and for extra features unique, so far, to Sr2RuO4.
Original languageEnglish
Pages (from-to)276-280
Number of pages5
JournalNature
Volume607
Issue number7918
Early online date13 Jul 2022
DOIs
Publication statusPublished - 14 Jul 2022

Fingerprint

Dive into the research topics of 'Elastocaloric determination of the phase diagram of Sr2RuO4'. Together they form a unique fingerprint.

Cite this