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Breakdown of the chiral anomaly in weyl semimetals in a strong magnetic field

Cited 39 time in Web of Science Cited 38 time in Scopus
Authors

Kim, Pilkwang; Ryoo, Ji Hoon; Park, Cheol Hwan

Issue Date
2017-12
Publisher
American Physical Society
Citation
Physical Review Letters, Vol.119 No.26, p. 266401
Abstract
The low-energy quasiparticles of Weyl semimetals are a condensed-matter realization of the Weyl fermions introduced in relativistic field theory. Chiral anomaly, the nonconservation of the chiral charge under parallel electric and magnetic fields, is arguably the most important phenomenon of Weyl semimetals and has been explained as an imbalance between the occupancies of the gapless, zeroth Landau levels with opposite chiralities. This widely accepted picture has served as the basis for subsequent studies. Here we report the breakdown of the chiral anomaly in Weyl semimetals in a strong magnetic field based on ab initio calculations. A sizable energy gap that depends sensitively on the direction of the magnetic field may open up due to the mixing of the zeroth Landau levels associated with the opposite-chirality Weyl points that are away from each other in the Brillouin zone. Our study provides a theoretical framework for understanding a wide range of phenomena closely related to the chiral anomaly in topological semimetals, such as magnetotransport, thermoelectric responses, and plasmons, to name a few.
ISSN
0031-9007
URI
https://hdl.handle.net/10371/202275
DOI
https://doi.org/10.1103/PhysRevLett.119.266401
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  • College of Natural Sciences
  • Department of Physics and Astronomy
Research Area Condensed Matter Physics, Nanoscale Photonics, Nanoscale Physics, 나노 물리와 나노 광자학, 응집 물질 물리

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