Power law decay of local density of states oscillations near a line defect in a system with semi-Dirac points
arXiv:2103.17066 · doi:10.1103/PhysRevB.103.125429
Abstract
We theoretically study the power-law decay behavior of the local density of states (LDOS) oscillations near a line defect in system with semi-Dirac points by using a low-energy k.p Hamiltonian. We find that the LDOS oscillations are strongly anisotropic and sensitively depend on the orientation of the line defect. We analytically obtain the decay indexes of the LDOS oscillations near a line defect running along different directions by using the stationary phase approximation. Specifically, when the line defect is perpendicular to the linear dispersion direction, the decay index is -5/4 whereas it becomes -1/4 if the system is gapped, both of which are different from the decay index -3/2 in isotropic Dirac systems. In contrast, when the line defect is perpendicular to the parabolic dispersion direction, the decay index is always -1/2 regardless of whether the system is gapped or not, which is the same as that in a conventional semimetal. In general, when the defect runs along an arbitrary direction, the decay index sensitively depends on the incident energy for a certain orientation of the line defect. It varies from -5/4 to -1/2 due to the absence of strict stationary phase point. Our results indicate that the decay index -5/4 provides a fingerprint to identify semi-Dirac points in 2D electron systems.
Published version: 9 Pages, 6 Figures
References in corpus (15)
- Electric Field Effect in Atomically Thin Carbon Films
- The electronic properties of graphene
- Chiral tunneling and the Klein paradox in graphene
- A tight-binding approach to uniaxial strain in graphene
- Electric Field Induced Topological Phase Transition in Two-Dimensional Few-layer Black Phosphorus
- Merging of Dirac points in a two-dimensional crystal
- A new magnetic field dependence of Landau levels on a graphene like structure
- Zero modes of tight binding electrons on the honeycomb lattice
- A semi-Dirac point in the Hofstadter spectrum
- Optical properties of a semi-Dirac material
- Stationary phase approximation approach to the quasiparticle interference on the surface of a strong topological insulator
- Electric-field tunable Dirac semimetal state in phosphorene thin films
- Surface states scattering from a step defect in topological insulator Bi_{2}Te_{3}
- Quantum Hall studies of a Semi-Dirac Nanoribbon
- RKKY interaction between extended magnetic defect lines in graphene