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dc.contributor.authorKasapoğlu, Esin
dc.date.accessioned2022-04-29T07:32:15Z
dc.date.available2022-04-29T07:32:15Z
dc.date.issued25 October 2021tr
dc.identifier.urihttps://hdl.handle.net/20.500.12418/12611
dc.description.abstractUsing the effective mass approximation in a parabolic two-band model, we studied the effects of the geometrical parameters, on the electron and hole states, in two truncated conical quantum dots: (i) GaAs-(Ga,Al)As in the presence of a shallow donor impurity and under an applied magnetic field and (ii) CdSe–CdTe core–shell type-II quantum dot. For the first system, the impurity position and the applied magnetic field direction were chosen to preserve the system’s azimuthal symmetry. The finite element method obtains the solution of the Schrödinger equations for electron or hole with or without impurity with an adaptive discretization of a triangular mesh. The interaction of the electron and hole states is calculated in a first-order perturbative approximation. This study shows that the magnetic field and donor impurities are relevant factors in the optoelectronic properties of conical quantum dots. Additionally, for the CdSe–CdTe quantum dot, where, again, the axial symmetry is preserved, a switch between direct and indirect exciton is possible to be controlled through geometrytr
dc.language.isoengtr
dc.publisherMDPItr
dc.relation.isversionof10.3390/nano11112832tr
dc.rightsinfo:eu-repo/semantics/closedAccesstr
dc.subjecttruncated conical quantum dots; exciton states; donor-impurity states; applied magnetic field; type II quantum dotstr
dc.titleShallow Donor Impurity States with Excitonic Contribution in GaAs/AlGaAs and CdTe/CdSe Truncated Conical Quantum Dots under Applied Magnetic Fieldtr
dc.typearticletr
dc.relation.journalNanomaterialstr
dc.contributor.departmentFen Fakültesitr
dc.contributor.authorID0000-0002-0893-9210tr
dc.identifier.volume11tr
dc.identifier.issue11tr
dc.identifier.endpage2850tr
dc.identifier.startpage2832tr
dc.relation.publicationcategoryUluslararası Editör Denetimli Dergide Makaletr


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