Signatures of exciton condensation in a transition metal dichalcogenide

Authors
  • A. Kogar
  • M.S. Rak
  • S. Vig
  • A.A. Husain
  • F. Flicker
  • Y.I. Joe
  • L. Venema
  • G.J. MacDougall
  • T.C. Chiang
  • E. Fradkin
  • J. van Wezel ORCID logo
  • P. Abbamonte
Publication date 2017
Journal Science
Volume | Issue number 358 | 6368
Pages (from-to) 1314-1317
Organisations
  • Faculty of Science (FNWI) - Institute of Physics (IoP) - Institute for Theoretical Physics Amsterdam (ITFA)
Abstract
Bose condensation has shaped our understanding of macroscopic quantum phenomena, having been realized in superconductors, atomic gases, and liquid helium. Excitons are bosons that have been predicted to condense into either a superfluid or an insulating electronic crystal. Using the recently developed technique of momentum-resolved electron energy-loss spectroscopy (M-EELS), we studied electronic collective modes in the transition metal dichalcogenide semimetal 1T-TiSe2. Near the phase-transition temperature (190 kelvin), the energy of the electronic mode fell to zero at nonzero momentum, indicating dynamical slowing of plasma fluctuations and crystallization of the valence electrons into an exciton condensate. Our study provides compelling evidence for exciton condensation in a three-dimensional solid and establishes M-EELS as a versatile technique sensitive to valence band excitations in quantum materials.
Document type Article
Language English
Published at https://doi.org/10.1126/science.aam6432
Other links https://www.scopus.com/pages/publications/85037646038
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