Research paperTheoreticalElectron flow in Monolayer Molybdenum Disulfide Quantum Dot with Magnetic FluxAbdelhadi Belouad, Abdellatif Kamal, Rachid Houça, El Bouâzzaoui Choubabi2022·10.48550/arxiv.2203.02945·arXiv:2203.02945AbstractWe study the Dirac electron scattering problem on a potential barrier in a circular quantum dot of Monolayer Molybdenum Disulfide quantum dot MoS₂ subjected to magnetic flux. By solving Dirac’s equation, we formulate analytical expressions for the eigenstates, scattering coefficients, scattering efficiency, and the reflected current’s radial component. We show that the scattering coefficients, the scattering efficiency, and the radial component of the reflected current depend explicitly on the magnetic flux. The magnetic flux may cause a slight shift in the oscillation position of the scattering coefficients. For scattering efficiency, magnetic flux may also lead to a slight shift in their oscillation position and an increase in amplitude when the magnetic flux decreases.Read more
Analytical model of a monolayer MoS₂ circular quantum dot subjected to an electrostatic potential barrier and magnetic flux.No measurements recordedSimulatedMoS₂Studied MaterialExpand
Research paperTheoreticalElectron flow in Monolayer Molybdenum Disulfide Quantum Dot with Magnetic FluxAbdelhadi Belouad, Abdellatif Kamal, Rachid Houça, El Bouâzzaoui Choubabi2022·10.48550/arxiv.2203.02945·arXiv:2203.02945AbstractWe study the Dirac electron scattering problem on a potential barrier in a circular quantum dot of Monolayer Molybdenum Disulfide quantum dot MoS₂ subjected to magnetic flux. By solving Dirac’s equation, we formulate analytical expressions for the eigenstates, scattering coefficients, scattering efficiency, and the reflected current’s radial component. We show that the scattering coefficients, the scattering efficiency, and the radial component of the reflected current depend explicitly on the magnetic flux. The magnetic flux may cause a slight shift in the oscillation position of the scattering coefficients. For scattering efficiency, magnetic flux may also lead to a slight shift in their oscillation position and an increase in amplitude when the magnetic flux decreases.Read more
Analytical model of a monolayer MoS₂ circular quantum dot subjected to an electrostatic potential barrier and magnetic flux.No measurements recordedSimulatedMoS₂Studied MaterialExpand
Research paperTheoreticalElectron flow in Monolayer Molybdenum Disulfide Quantum Dot with Magnetic FluxAbdelhadi Belouad, Abdellatif Kamal, Rachid Houça, El Bouâzzaoui Choubabi2022·10.48550/arxiv.2203.02945·arXiv:2203.02945AbstractWe study the Dirac electron scattering problem on a potential barrier in a circular quantum dot of Monolayer Molybdenum Disulfide quantum dot MoS₂ subjected to magnetic flux. By solving Dirac’s equation, we formulate analytical expressions for the eigenstates, scattering coefficients, scattering efficiency, and the reflected current’s radial component. We show that the scattering coefficients, the scattering efficiency, and the radial component of the reflected current depend explicitly on the magnetic flux. The magnetic flux may cause a slight shift in the oscillation position of the scattering coefficients. For scattering efficiency, magnetic flux may also lead to a slight shift in their oscillation position and an increase in amplitude when the magnetic flux decreases.Read more
Analytical model of a monolayer MoS₂ circular quantum dot subjected to an electrostatic potential barrier and magnetic flux.No measurements recordedSimulatedMoS₂Studied MaterialExpand
Research paperTheoreticalElectron flow in Monolayer Molybdenum Disulfide Quantum Dot with Magnetic FluxAbdelhadi Belouad, Abdellatif Kamal, Rachid Houça, El Bouâzzaoui Choubabi2022·10.48550/arxiv.2203.02945·arXiv:2203.02945AbstractWe study the Dirac electron scattering problem on a potential barrier in a circular quantum dot of Monolayer Molybdenum Disulfide quantum dot MoS₂ subjected to magnetic flux. By solving Dirac’s equation, we formulate analytical expressions for the eigenstates, scattering coefficients, scattering efficiency, and the reflected current’s radial component. We show that the scattering coefficients, the scattering efficiency, and the radial component of the reflected current depend explicitly on the magnetic flux. The magnetic flux may cause a slight shift in the oscillation position of the scattering coefficients. For scattering efficiency, magnetic flux may also lead to a slight shift in their oscillation position and an increase in amplitude when the magnetic flux decreases.Read more
Analytical model of a monolayer MoS₂ circular quantum dot subjected to an electrostatic potential barrier and magnetic flux.No measurements recordedSimulatedMoS₂Studied MaterialExpand