Kuepper K, Kuschel O, Pathé N, et al. Electronic and magnetic structure of epitaxial Fe3O4(001)/NiO heterostructures grown on MgO(001) and Nb-doped SrTiO3(001). Physical Review B. 2016;94(2): 024401.We study the underlying chemical, electronic, and magnetic properties of a number of magnetite-based thin films. The main focus is placed onto Fe3O4(001)/NiO bilayers grown on MgO(001) and Nb-SrTiO3(001) substrates. We compare the results with those obtained on pure Fe3O4(001) thin films. It is found that the magnetite layers are oxidized and Fe3+ dominates at the surfaces due to maghemite (γ−Fe2O3) formation, which decreases with increasing magnetite layer thickness. For layer thicknesses of around 20 nm and above, the cationic distribution is ...
This work describes the synthesis of high quality of epitaxial Fe3O4 ultrathin films and characteriz...
Crystalline Fe3O4/NiO bilayers were grown on MgO(001) substrates using reactive molecular beam epita...
Kuschel O, Buß R, Spiess W, et al. From Fe3O4/NiO bilayers to NiFe2O4-like thin films through Ni int...
Wollschläger J, Schemme T, Kuschel O, Witziok M, Kuschel T, Kuepper K. Structural, magnetic and magn...
Ultrathin magnetite ($Fe_{3}O_{4}$) films are attractive for applications in the field of spintronic...
We present a comparative study of the morphology and structural as well as magnetic properties of cr...
We present a comparative study of the morphology and structural as well as magnetic properties of cr...
Within this thesis, a comprehensive study of the initial growth process of pure Fe3O4 films and Fe3O...
Epitaxial Fe3O4/NiO bilayers were epitaxially grown on MgO(001) and Al2O3(0001) substrates to invest...
This work investigates the growth dynamic of the reactive molecular beam epitaxy of Fe3O4 films, and...
In this article, we review our recent research on Fe3O4 epitaxial thin films and Fe3O4/MgO/Fe epitax...
Spinel ferrites are being considered for advanced spintronic applications. Here, we report on the ma...
Epitaxial Fe3O4/NiO bilayers were epitaxially grown on MgO(001) and Al2O3(0001) substrates to inves...
Fe3O4 is a candidate material for future spintronic device applications due to its predicted half me...
Ferrites with (inverse) spinel structure display a large variety of electronic and magnetic properti...
This work describes the synthesis of high quality of epitaxial Fe3O4 ultrathin films and characteriz...
Crystalline Fe3O4/NiO bilayers were grown on MgO(001) substrates using reactive molecular beam epita...
Kuschel O, Buß R, Spiess W, et al. From Fe3O4/NiO bilayers to NiFe2O4-like thin films through Ni int...
Wollschläger J, Schemme T, Kuschel O, Witziok M, Kuschel T, Kuepper K. Structural, magnetic and magn...
Ultrathin magnetite ($Fe_{3}O_{4}$) films are attractive for applications in the field of spintronic...
We present a comparative study of the morphology and structural as well as magnetic properties of cr...
We present a comparative study of the morphology and structural as well as magnetic properties of cr...
Within this thesis, a comprehensive study of the initial growth process of pure Fe3O4 films and Fe3O...
Epitaxial Fe3O4/NiO bilayers were epitaxially grown on MgO(001) and Al2O3(0001) substrates to invest...
This work investigates the growth dynamic of the reactive molecular beam epitaxy of Fe3O4 films, and...
In this article, we review our recent research on Fe3O4 epitaxial thin films and Fe3O4/MgO/Fe epitax...
Spinel ferrites are being considered for advanced spintronic applications. Here, we report on the ma...
Epitaxial Fe3O4/NiO bilayers were epitaxially grown on MgO(001) and Al2O3(0001) substrates to inves...
Fe3O4 is a candidate material for future spintronic device applications due to its predicted half me...
Ferrites with (inverse) spinel structure display a large variety of electronic and magnetic properti...
This work describes the synthesis of high quality of epitaxial Fe3O4 ultrathin films and characteriz...
Crystalline Fe3O4/NiO bilayers were grown on MgO(001) substrates using reactive molecular beam epita...
Kuschel O, Buß R, Spiess W, et al. From Fe3O4/NiO bilayers to NiFe2O4-like thin films through Ni int...