Quantum Oscillations in the Chiral Magnetic Conductivity
arXiv:1703.05865 · doi:10.1103/PhysRevB.95.235136
Abstract
In strong magnetic field the longitudinal magnetoconductivity in 3D chiral materials is shown to exhibit a new type of quantum oscillations arising from the chiral magnetic effect (CME). These quantum CME oscillations are predicted to dominate over the Shubnikov-de Haas (SdH) ones in chiral materials with an approximately conserved chirality of quasiparticles at strong magnetic fields. The phase of quantum CME oscillations differs from the phase of the conventional SdH oscillations by .
5 pages, 3 figures
References in corpus (10)
- The Chiral Magnetic Effect
- Topological response in Weyl semimetals and the chiral anomaly
- Berry Curvature, Triangle Anomalies, and the Chiral Magnetic Effect in Fermi Liquids
- Strain induced Chiral Magnetic Effect in Weyl semimetals
- Dirac and Normal Fermions in Graphite and Graphene: Implications to the Quantum Hall Effect
- Observation of the Adler-Bell-Jackiw chiral anomaly in a Weyl semimetal
- Detecting Chiral Magnetic Effect by Lattice Dynamics
- Chiral anomaly induced negative magnetoresistance in topological Weyl semimetal NbAs
- Observation of Negative Magnetoresistance and nontrivial Berrys phase in 3D Weyl semi-metal NbAs
- Chiral magnetic superconductivity
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- Optical properties and energy propagation in a dielectric medium supporting magnetic current
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- Magneto-conductivity and CME in Dirac semimetals from Keldysh technique in Landau levels basis