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In situ strain tuning of the metal-insulator-transition of Ca2RuO4 in angle-resolved photoemission experiments

  • S. Riccò
  • , M. Kim
  • , A. Tamai
  • , S. McKeown Walker
  • , F. Y. Bruno
  • , I. Cucchi
  • , E. Cappelli
  • , C. Besnard
  • , T. K. Kim
  • , P. Dudin
  • , M. Hoesch
  • , M. J. Gutmann
  • , A. Georges
  • , R. S. Perry
  • , F. Baumberger*
  • *Corresponding author for this work
  • University of Geneva
  • Université Paris-Saclay
  • Collège de France
  • Diamond Light Source
  • German Electron Synchrotron
  • ISIS Neutron and Muon Source
  • Simons Foundation
  • University College London
  • Paul Scherrer Institute

Research output: Contribution to journalJournal articlepeer-review

Abstract

Pressure plays a key role in the study of quantum materials. Its application in angle resolved photoemission (ARPES) studies, however, has so far been limited. Here, we report the evolution of the k-space electronic structure of bulk Ca2RuO4, lightly doped with Pr, under uniaxial strain. Using ultrathin plate-like crystals, we achieve uniaxial strain levels up to −4.1%, sufficient to suppress the insulating Mott phase and access the previously unexplored electronic structure of the metallic state at low temperature. ARPES experiments performed while tuning the uniaxial strain reveal that metallicity emerges from a marked redistribution of charge within the Ru t2g shell, accompanied by a sudden collapse of the spectral weight in the lower Hubbard band and the emergence of a well-defined Fermi surface which is devoid of pseudogaps. Our results highlight the profound roles of lattice energetics and of the multiorbital nature of Ca2RuO4 in this archetypal Mott transition and open new perspectives for spectroscopic measurements.

Original languageEnglish
Article number4535
JournalNature Communications
Volume9
Issue number1
DOIs
StatePublished - 2018.12.1

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