| Literature DB >> 31440591 |
Fernando Adan Serrano Orozco1, Juan Gerardo Avalos Ochoa1, Xochitl Cabrera Rivas1, Jose Luis Cuevas Figueroa2, Hugo Moises Martinez Carrada1.
Abstract
In this paper, we have to apply the Dirac-Weyl equation to find the analytical energy eigenvalues of the graphene quantum dot interacting in the presence of AB-flux field and external magnetic field. We find that the energy eigenvalue of the graphene quantum dot decreases with both magnetic and AB-flux field but the effect of AB-flux field is more dominant. By ameliorating the intensity of the AB-flux field and keeping the magnetic field constant, the quantum-dot states entangled to produce Landau Levels. We show that besides using the graphene sheet and external magnetic field, the Aharonov-Bohm AB-flux field could as well be used to manipulate the carriers state energies in graphene.Entities:
Keywords: AB-flux field; Dirac-Weyl equation; Energy eigenvalues; Graphene quantum dot; Landau Levels; Quantum mechanics
Year: 2019 PMID: 31440591 PMCID: PMC6698883 DOI: 10.1016/j.heliyon.2019.e02224
Source DB: PubMed Journal: Heliyon ISSN: 2405-8440
Figure 1(a) Energy spectrum of graphene quantum dot as a function of magnetic field for ζ = 2. The same as (a) but for ζ = 2. (c) Energy spectrum of graphene quantum dot as a function of AB-flux field for B = 5. The same as (a) but for B = 1.