Voltage induced switching of an antiferromagnetically ordered topological Dirac semimetal
arXiv:1711.09926 · doi:10.1103/PhysRevB.97.134415
Abstract
An antiferromagnetic semimetal has been recently identified as a new member of topological semimetals that may host three-dimensional symmetry-protected Dirac fermions. A reorientation of the Néel vector may break the underlying symmetry and open a gap in the quasi-particle spectrum, inducing the (semi)metal-insulator transition. Here, we predict that such transition may be controlled by manipulating the chemical potential location of the material. We perform both analytical and numerical analysis on the thermodynamic potential of the model Hamiltonian and find that the gapped spectrum is preferred when the chemical potential is located at the Dirac point. As the chemical potential deviates from the Dirac point, the system shows a possible transition from the gapped to the gapless phase and switches the corresponding Néel vector configuration. We perform density functional theory calculations to verify our analysis using a realistic material and discuss a two terminal transport measurement as a possible route to identify the voltage induced switching of the Néel vector.
16 pages, 9 figures, the density functional theory calculation analysis (Section IV.D) has been modified
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Cited by in corpus (5)
- Perspective on Metallic Antiferromagnets
- Ultrafast reorientation of the Néel vector in antiferromagnetic Dirac semimetals
- An in-plane hexagonal antiferromagnet in the Cu-Mn-As system, CuMnAs
- Topological Aspects of Antiferromagnets
- Impact of thermal fluctuations on transport in antiferromagnetic semimetals