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Direct Observation of a Uniaxial Stress-driven Lifshitz Transition in Sr$_{2}$RuO$_{4}$

Authors :
Dijana Milosavljević
Andrew P. Mackenzie
Edgar Abarca Morales
Helge Rosner
Dmitry A. Sokolov
Pavel Dudin
Philip D. C. King
Veronika Sunko
Naoki Kikugawa
Clifford W. Hicks
Federico Mazzola
Igor Marković
Mark E. Barber
Cephise Cacho
European Research Council
EPSRC
The Royal Society
University of St Andrews. Centre for Designer Quantum Materials
University of St Andrews. School of Physics and Astronomy
University of St Andrews. Condensed Matter Physics
Source :
npj Quantum Materials, Vol 4, Iss 1, Pp 1-7 (2019), npj Quantum Materials
Publication Year :
2019

Abstract

Pressure represents a clean tuning parameter for traversing the complex phase diagrams of interacting electron systems, and as such has proved of key importance in the study of quantum materials. Application of controlled uniaxial pressure has recently been shown to more than double the transition temperature of the unconventional superconductor Sr2RuO4, leading to a pronounced peak in Tc versus strain whose origin is still under active debate. Here we develop a simple and compact method to passively apply large uniaxial pressures in restricted sample environments, and utilise this to study the evolution of the electronic structure of Sr2RuO4 using angle-resolved photoemission. We directly visualise how uniaxial stress drives a Lifshitz transition of the γ-band Fermi surface, pointing to the key role of strain-tuning its associated van Hove singularity to the Fermi level in mediating the peak in Tc. Our measurements provide stringent constraints for theoretical models of the strain-tuned electronic structure evolution of Sr2RuO4. More generally, our experimental approach opens the door to future studies of strain-tuned phase transitions not only using photoemission but also other experimental techniques where large pressure cells or piezoelectric-based devices may be difficult to implement.

Details

Language :
English
Database :
OpenAIRE
Journal :
npj Quantum Materials, Vol 4, Iss 1, Pp 1-7 (2019), npj Quantum Materials
Accession number :
edsair.doi.dedup.....2db6b677ad41e4ee97477b4fb97eebd6