Transport evidence for decoupled nematic and magnetic criticality in iron chalcogenides

Jake Ayres, Matija Čulo, Jonathan Buhot, Bence Bernáth, Shigeru Kasahara, Yuji Matsuda, Takasada Shibauchi, Antony Carrington, Sven Friedemann, Nigel E. Hussey

Research output: Contribution to journalArticlepeer-review

2 Citations (Scopus)


Electronic nematicity in correlated metals often occurs alongside another instability such as magnetism. The question thus remains whether nematicity alone can drive unconventional superconductivity or anomalous (quantum critical) transport in such systems. In FeSe, nematicity emerges in isolation, providing a unique opportunity to address this question. Studies to date, however, have proved inconclusive; while signatures of nematic criticality are observed upon sulfur substitution, they appear to be quenched by the emergent magnetism under the application of pressure. Here, we study the temperature and pressure dependence of the low-temperature resistivity of FeSe1-xSx crystals at x values beyond the nematic quantum critical point. Two distinct components to the resistivity are revealed; one that is suppressed with increasing pressure and one that grows upon approaching the magnetic state at higher pressures. These findings hint that nematic and magnetic critical fluctuations in FeSe1-xSx are completely decoupled, in marked contrast to other Fe-based superconductors.

Original languageEnglish
Article number100
JournalCommunications Physics
Issue number1
Publication statusPublished - Dec 2022
Externally publishedYes

ASJC Scopus subject areas

  • Physics and Astronomy(all)


Dive into the research topics of 'Transport evidence for decoupled nematic and magnetic criticality in iron chalcogenides'. Together they form a unique fingerprint.

Cite this