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Electron trapping via magnetic and laser fields in gapped graphene quantum dots

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arxiv 2501.17494 v1 pith:KZ4OGBVS submitted 2025-01-29 cond-mat.mes-hall

Electron trapping via magnetic and laser fields in gapped graphene quantum dots

classification cond-mat.mes-hall
keywords electronscatteringenergygraphenelasermagneticpolarizedcircularly
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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We study electron scattering in graphene quantum dots (GQDs) under the combined influence of a magnetic field, an energy gap, and circularly polarized laser irradiation. Using the Floquet approach and the Dirac equation, we derive the energy spectrum solutions. The scattering coefficients are calculated explicitly by matching the eigenspinors at the GQD interfaces, revealing a dependence on several physical parameters. In addition, we compute the scattering efficiency, the electron density distribution, and the lifetime of the quasi-bound states. Our numerical results show that the presence of an energy gap and circularly polarized laser irradiation enhances the localization of the electron density within the GQDs, leading to an increase in the lifetime of the quasi-bound states. In particular, the intensity and polarization of the light influence the scattering process, allowing the manipulation of the electron confinement state. These results highlight the importance of combining magnetic fields and polarized light to control electronic transport in graphene nanostructures.

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