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The electronic structure and effective excitonic g factors of GaAs/GaMnAs core-shell nanowires

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Abstract We calculate the electronic structures of cylindrical GaAs/GaMnAs core-shell nanowires in the magnetic field based on the eight-band effective-mass k ⋅ p theory, and it is found that the… Click to show full abstract

Abstract We calculate the electronic structures of cylindrical GaAs/GaMnAs core-shell nanowires in the magnetic field based on the eight-band effective-mass k ⋅ p theory, and it is found that the hole states can present strong band-crossings. The probability densities of several lowest electron states and highest hole states at the Γ point are analyzed, and strangely, the distribution of the electron states are more complex than that of the hole states. Furthermore, the components of the electron states will change substantially as the increase of the radius R, which are almost unchanged for the hole states. A very interesting phenomenon is that the effective excitonic g factors g e x can be tuned from a large positive value for GaMnAs nanowires to a small negative value for GaAs nanowires, and g e x of GaAs nanowires and GaMnAs nanowires will vary slightly and greatly, respectively as the increase of the magnetic field. Meanwhile, we can obtain large g e x in cylindrical GaAs/GaMnAs core-shell nanowires when the small magnetic field, the large concentration of manganese ions, the small core radius and the small radius are chosen. Another important result is also found that the radiative intensities of two σ polarized lights can be separated gradually by decreasing the core radius R c , which can be used to detect two σ polarized lights in the experiment.

Keywords: core shell; gamnas core; shell nanowires; gaas gamnas; hole states

Journal Title: Superlattices and Microstructures
Year Published: 2017

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