Published June 7, 2024 | Version v1
Journal article

Uniaxial strain effects on the Fermi surface and quantum mobility of the Dirac nodal-line semimetal ZrSiS

  • 1. Van der Waals-Zeeman Institute, University of Amsterdam, Science Park 904, 1098 XH Amsterdam, The Netherlands
  • 2. High Field Magnet Laboratory (HMFL-EMFL) & Institute for Molecules and Materials, Radboud University, Toernooiveld 7, 6525 ED Nijmegen, The Netherlands
  • 3. Institute for Theoretical Physics Amsterdam, University of Amsterdam and European Theoretical Spectroscopy Facility, Science Park 904, 1098 XH Amsterdam, The Netherlands
  • 4. Department of Chemistry, Princeton University, Princeton, New Jersey 08544, USA
  • 5. H. H. Wills Physics Laboratory, University of Bristol, Tyndall Avenue, Bristol BS8 1TL, United Kingdom

Description

ZrSiS has been identified as an exemplary Dirac nodal-line semimetal, in which the Dirac band crossings extend along a closed loop in momentum space. Recently, the topology of the Fermi surface of ZrSiS was uncovered in great detail by quantum oscillation studies. For a magnetic field along the tetragonal c axis, a rich frequency spectrum was observed stemming from the principal electron and hole pockets and multiple magnetic breakdown orbits. In this work we use uniaxial strain as a tuning parameter for the Fermi surface and the low-energy excitations. We measure the magnetoresistance of a single crystal under tensile (up to 0.34%) and compressive (up to 0.28%) strain exerted along the a axis and in magnetic fields up to 30 T. We observe a systematic weakening of the peak structure in the Shubnikov-de Haas frequency spectrum upon changing from compressive to tensile strain. This effect may be explained by a decrease in the effective quantum mobility upon decreasing the c/a ratio, which is corroborated by a concurrent increase in the Dingle temperature.

Additional details

Identifiers

DOI
10.1103/PhysRevB.109.235114;
Crossref Funder ID
10.13039/501100003246; 10.13039/100014564; 10.13039/100000001; 10.13039/100000936;

Publishing Information

Journal Title
Physical Review B
Journal Volume
109
Journal Issue
23
Journal Page Range
7 pgs.
ISSN
1550-235X

Optional Information

Copyright
©2024 American Physical Society
Contract/Grant/Project number
OCENW.GROOT.2019.048; DMR-2011750; GBMF9064
Notes
Contact Email: j.p.lorenz@uva.nl; Contact Email: a.devisser@uva.nl; Record automatically processed
Funding organization
Nederlandse Organisatie voor Wetenschappelijk Onderzoek; Princeton Center for Complex Materials; National Science Foundation; Gordon and Betty Moore Foundation