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Signatures of a magnetic-field-induced Lifshitz transition in the ultra-quantum limit of the topological semimetal ZrTe5

  • S. Galeski
  • , H. F. Legg
  • , R. Wawrzyńczak
  • , T. Förster
  • , S. Zherlitsyn
  • , D. Gorbunov
  • , M. Uhlarz
  • , P. M. Lozano
  • , Q. Li
  • , G. D. Gu
  • , C. Felser
  • , J. Wosnitza
  • , T. Meng
  • , J. Gooth
  • Max Planck Institute for Chemical Physics of Solids
  • University of Bonn
  • University of Basel
  • Helmholtz-Zentrum Dresden-Rossendorf
  • Brookhaven National Laboratory Condensed Matter Physics and Materials Science Department
  • Technische Universität Dresden

Research output: Contribution to journalArticlepeer-review

21 Scopus citations

Abstract

The quantum limit (QL) of an electron liquid, realised at strong magnetic fields, has long been proposed to host a wealth of strongly correlated states of matter. Electronic states in the QL are, for example, quasi-one dimensional (1D), which implies perfectly nested Fermi surfaces prone to instabilities. Whereas the QL typically requires unreachably strong magnetic fields, the topological semimetal ZrTe5 has been shown to reach the QL at fields of only a few Tesla. Here, we characterize the QL of ZrTe5 at fields up to 64 T by a combination of electrical-transport and ultrasound measurements. We find that the Zeeman effect in ZrTe5 enables an efficient tuning of the 1D Landau band structure with magnetic field. This results in a Lifshitz transition to a 1D Weyl regime in which perfect charge neutrality can be achieved. Since no instability-driven phase transitions destabilise the 1D electron liquid for the investigated field strengths and temperatures, our analysis establishes ZrTe5 as a thoroughly understood platform for potentially inducing more exotic interaction-driven phases at lower temperatures.

Original languageEnglish
Article number7418
JournalNature Communications
Volume13
Issue number1
DOIs
StatePublished - Dec 2022

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