Magnetism and anomalous transport in the Weyl semimetal PrAlGe: possible route to axial gauge fields

  • Daniel Destraz*
  • , Lakshmi Das
  • , Stepan S. Tsirkin
  • , Yang Xu
  • , Titus Neupert
  • , J. Chang
  • , A. Schilling
  • , Adolfo G. Grushin
  • , Joachim Kohlbrecher
  • , Lukas Keller
  • , Pascal Puphal
  • , Ekaterina Pomjakushina
  • , Jonathan S. White
  • *Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

103 Scopus citations

Abstract

In magnetic Weyl semimetals, where magnetism breaks time-reversal symmetry, large magnetically sensitive anomalous transport responses are anticipated that could be useful for topological spintronics. The identification of new magnetic Weyl semimetals is therefore in high demand, particularly since in these systems Weyl node configurations may be easily modified using magnetic fields. Here we explore experimentally the magnetic semimetal PrAlGe, and unveil a direct correspondence between easy-axis Pr ferromagnetism and anomalous Hall and Nernst effects. With sizes of both the anomalous Hall conductivity and Nernst effect in good quantitative agreement with first principles calculations, we identify PrAlGe as a system where magnetic fields can connect directly to Weyl nodes via the Pr magnetisation. Furthermore, we find the predominantly easy-axis ferromagnetic ground state co-exists with a low density of nanoscale textured magnetic domain walls. We describe how such nanoscale magnetic textures could serve as a local platform for tunable axial gauge fields of Weyl fermions.

Original languageEnglish
Article number5
Journalnpj Quantum Materials
Volume5
Issue number1
DOIs
StatePublished - 1 Dec 2020
Externally publishedYes

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