Berry curvature induced anisotropic magnetotransport in a quadratic triple-component fermionic system
Ojasvi Pal, Bashab Dey, Tarun Kanti Ghosh

TL;DR
This paper investigates the Berry curvature effects on anisotropic magnetotransport in quadratic triple-component fermions, revealing orientation-dependent behaviors and Fermi energy independence of certain transport coefficients.
Contribution
It provides exact Berry curvature expressions and analyzes magnetotransport properties for quadratic triple-component fermions with novel orientation-dependent phenomena.
Findings
Longitudinal and planar conductivities show quadratic magnetic field dependence.
Out-of-plane magnetoconductivity oscillates with field angle.
Some transport coefficients are Fermi energy independent.
Abstract
Triple-component fermions are pseudospin-1 quasiparticles hosted by certain three-band semimetals in the vicinity of their band-touching nodes [Phys. Rev. B {\bf 100}, 235201 (2019)]. The excitations comprise of a flat band and two dispersive bands. The energies of the dispersive bands are with and . In this work, we obtain the exact expression of Berry curvature, approximate form of density of states and Fermi energy as a function of carrier density for any value of . In particular, we study the Berry curvature induced electrical and thermal magnetotransport properties of quadratic triple-component fermions using semiclassical Boltzmann transport formalism. Since the energy spectrum is anisotropic, we consider two orientations of magnetic field (): (i) applied in…
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Taxonomy
TopicsTopological Materials and Phenomena · Graphene research and applications · 2D Materials and Applications
