Normal and skewed phosphorene nanoribbons in combined magnetic and electric fields

The energy spectrum and eigenstates of single-layer black phosphorus nanoribbons in the presence of a perpendicular magnetic field and an in-plane transverse electric field are investigated by means of a tight-binding method, and the effect of different types of edges is examined analytically. A des...

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Veröffentlicht in:Physical review. B 2017-09, Vol.96 (12), Article 125434
Hauptverfasser: Arsoski, Vladimir V., Grujić, Marko M., Čukarić, Nemanja A., Tadić, Milan Ž., Peeters, François M.
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container_issue 12
container_start_page
container_title Physical review. B
container_volume 96
creator Arsoski, Vladimir V.
Grujić, Marko M.
Čukarić, Nemanja A.
Tadić, Milan Ž.
Peeters, François M.
description The energy spectrum and eigenstates of single-layer black phosphorus nanoribbons in the presence of a perpendicular magnetic field and an in-plane transverse electric field are investigated by means of a tight-binding method, and the effect of different types of edges is examined analytically. A description based on a continuum model is proposed using an expansion of the tight-binding model in the long-wavelength limit. The wave functions corresponding to the flatband part of the spectrum are obtained analytically and are shown to agree well with the numerical results from the tight-binding method for both narrow (10 nm) and wide (100 nm) nanoribbons. Analytical expressions for the critical magnetic field at which Landau levels are formed and the ranges of wave numbers in the dispersionless flatband segments in the energy spectra are derived. We examine the evolution of the Landau levels when an in-plane lateral electric field is applied, and we determine analytically how the edge states shift with magnetic field. For wider nanoribbons, the conductance is shown to have a characteristic staircase shape in combined magnetic and electric fields. Some of the stairs in zigzag and skewed armchair nanoribbons originate from edge states that are found in the band gap.
doi_str_mv 10.1103/PhysRevB.96.125434
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subjects Binding
Continuum modeling
Eigenvectors
Electric fields
Energy spectra
Magnetic fields
Mathematical analysis
Mathematical models
Nanoribbons
Phosphorene
Resistance
Wave dispersion
Wave functions
title Normal and skewed phosphorene nanoribbons in combined magnetic and electric fields
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