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The present thesis studies the (Ga,Mn)As material in terms of optimization of very thin (4 nm) (Ga,Mn)As layers, epitaxially fabricated by the molecular beam epitaxy (MBE) technology. First of all, the ferromagnetic semiconductor (Ga,Mn)As with its structural, magnetic and electrical properties is introduced. The influences of point defects, interface and surface effects on bulk and thin (Ga,Mn)As layers are discussed by simplified self-consistent band alignment calculations. The experimental part is divided in three blocks: The first part studies the influence of epitaxial growth parameter conditions on electrical and magnetic properties of bulk (70 nm) (Ga,Mn)As layers. The second part introduces an alternative, parabolical Mn doping-profile instead of a 4 nm layer with a homogeneous Mn doping-profile. Improved properties of the parabolic layer have been observed as well as comparable magnetic and electrical properties to bulk (Ga,Mn)As layers, both with a Mn content of 4%. MBE growth parameters for the (Ga,Mn)As layers with a parabolically graded Mn profile and lowered nominal Mn content of 2.5% have been investigated. A narrow growth window has been found in which low-temperature (LT) layer properties are improved. The last part of this thesis presents an application of magnetic anisotropy control of a bulk (Ga,Mn)As layer.
This work studies the fundamental connection between lattice strain and magnetic anisotropy in the ferromagnetic semiconductor (Ga,Mn)As. The first chapters provide a general introduction into the material system and a detailed description of the growth process by molecular beam epitaxy. A finite element simulation formalism is developed to model the strain distribution in (Ga,Mn)As nanostructures is introduced and its predictions verified by high-resolution x-ray diffraction methods. The influence of lattice strain on the magnetic anisotropy is explained by an magnetostatic model. A possible device application is described in the closing chapter.