Research paperTheoreticalEffect of laser field and magnetic flux on scattering in graphene quantum dotsMohammed El Azar, Ahmed Bouhlal, Hocine Bahlouli, Ahmed JellalarXiv preprint·2025·10.2139/ssrn.5170020·arXiv:2502.12639AbstractWe show how Dirac electrons interact with a graphene quantum dots (GQDs) when exposed to both a magnetic flux and circularly polarized light. After obtaining the solutions of the energy spectrum, we compute the scattering coefficients. These allow us to show how efficiently the electrons diffuse and how their probability density is distributed in space. Our results show that light polarization is key in controlling electron scattering. It affects electron localization near the GQDs and the strength of the scattering coefficients. We also investigate how light intensity and magnetic flux affect the formation of quasi-bound states. In addition, the electrostatic potential reduces the density of scattering states and fine-tunes the interaction between electrons and the quantum dot.Read more
Graphene quantum dot scattering system under magnetic flux, circularly polarized light, and electrostatic potential.No measurements recordedSimulatedCStudied MaterialExpand
Research paperTheoreticalEffect of laser field and magnetic flux on scattering in graphene quantum dotsMohammed El Azar, Ahmed Bouhlal, Hocine Bahlouli, Ahmed JellalarXiv preprint·2025·10.2139/ssrn.5170020·arXiv:2502.12639AbstractWe show how Dirac electrons interact with a graphene quantum dots (GQDs) when exposed to both a magnetic flux and circularly polarized light. After obtaining the solutions of the energy spectrum, we compute the scattering coefficients. These allow us to show how efficiently the electrons diffuse and how their probability density is distributed in space. Our results show that light polarization is key in controlling electron scattering. It affects electron localization near the GQDs and the strength of the scattering coefficients. We also investigate how light intensity and magnetic flux affect the formation of quasi-bound states. In addition, the electrostatic potential reduces the density of scattering states and fine-tunes the interaction between electrons and the quantum dot.Read more
Graphene quantum dot scattering system under magnetic flux, circularly polarized light, and electrostatic potential.No measurements recordedSimulatedCStudied MaterialExpand
Research paperTheoreticalEffect of laser field and magnetic flux on scattering in graphene quantum dotsMohammed El Azar, Ahmed Bouhlal, Hocine Bahlouli, Ahmed JellalarXiv preprint·2025·10.2139/ssrn.5170020·arXiv:2502.12639AbstractWe show how Dirac electrons interact with a graphene quantum dots (GQDs) when exposed to both a magnetic flux and circularly polarized light. After obtaining the solutions of the energy spectrum, we compute the scattering coefficients. These allow us to show how efficiently the electrons diffuse and how their probability density is distributed in space. Our results show that light polarization is key in controlling electron scattering. It affects electron localization near the GQDs and the strength of the scattering coefficients. We also investigate how light intensity and magnetic flux affect the formation of quasi-bound states. In addition, the electrostatic potential reduces the density of scattering states and fine-tunes the interaction between electrons and the quantum dot.Read more
Graphene quantum dot scattering system under magnetic flux, circularly polarized light, and electrostatic potential.No measurements recordedSimulatedCStudied MaterialExpand
Research paperTheoreticalEffect of laser field and magnetic flux on scattering in graphene quantum dotsMohammed El Azar, Ahmed Bouhlal, Hocine Bahlouli, Ahmed JellalarXiv preprint·2025·10.2139/ssrn.5170020·arXiv:2502.12639AbstractWe show how Dirac electrons interact with a graphene quantum dots (GQDs) when exposed to both a magnetic flux and circularly polarized light. After obtaining the solutions of the energy spectrum, we compute the scattering coefficients. These allow us to show how efficiently the electrons diffuse and how their probability density is distributed in space. Our results show that light polarization is key in controlling electron scattering. It affects electron localization near the GQDs and the strength of the scattering coefficients. We also investigate how light intensity and magnetic flux affect the formation of quasi-bound states. In addition, the electrostatic potential reduces the density of scattering states and fine-tunes the interaction between electrons and the quantum dot.Read more
Graphene quantum dot scattering system under magnetic flux, circularly polarized light, and electrostatic potential.No measurements recordedSimulatedCStudied MaterialExpand