The antiphase domain structure in epitaxial Fe3O4 films determines its physical properties such as superparamagnetism, resistivity, and magnetoresistance. A good knowledge and control of the domain sizes in these films is therefore of utmost importance. We report on the finding that the antiphase domain boundaries anneal out via a diffusive mechanism at relatively low temperatures. This has been demonstrated by postannealing the films at 250 degreesC, 300 degreesC and 350 degreesC. The boundary migration process is a thermally activated process with an activation energy of 26 kJ/mol (250 meV). We have further studied the domain size in epitaxial Fe3O4 films as a function of growth parameters. A linear relationship has been obtained for the ...
Polycrystalline Fe3O4 thin films were grown on Si(100) substrate by reactive DC sputtering at differ...
We report a direct observation of magnetic domain evolution near the Verwey transition (TV) in Fe3O4...
The occurrence of antiferromagnetic coupling at antiphase domain boundaries (APBs) of ferromagnetic ...
The antiphase domain structure in epitaxial Fe3O4 films determines its physical properties such as s...
We have studied the magnetic properties of ultrathin magnetite (Fe3O4) films and explained them in r...
THESIS 8224The strain relaxation and magneto transport properties of epitaxial magnetite (Fe3O4) thi...
The occurrence of anti-phase domain boundaries (APBs) in epitaxial Fe3O4 films has a strong influenc...
We observe exchange bias (EB) in a single magnetic film Fe3O4 at temperature T < 200 K. Irrespective...
We have systematically studied the evolution of magnetic properties, especially the coercivity and t...
We have carried out a systematic experimental investigation to address the question why thin films o...
Strain relaxation studies in epitaxial magnetite, Fe3O4, thin films grown on MgAl2O4(100) substrates...
Recent studies show that the magnetic properties of epitaxial thin films of magnetite (Fe3O4) deviat...
Fe3O4 nanowires have been fabricated based on Fe3O4 thin films grown on a-Al2O3 s0001d substrates us...
Polycrystalline Fe3O4 films have been prepared by reactive sputtering at room temperature. A transmi...
Polycrystalline Fe3O4 thin films were grown on Si(100) substrate by reactive DC sputtering at differ...
We report a direct observation of magnetic domain evolution near the Verwey transition (TV) in Fe3O4...
The occurrence of antiferromagnetic coupling at antiphase domain boundaries (APBs) of ferromagnetic ...
The antiphase domain structure in epitaxial Fe3O4 films determines its physical properties such as s...
We have studied the magnetic properties of ultrathin magnetite (Fe3O4) films and explained them in r...
THESIS 8224The strain relaxation and magneto transport properties of epitaxial magnetite (Fe3O4) thi...
The occurrence of anti-phase domain boundaries (APBs) in epitaxial Fe3O4 films has a strong influenc...
We observe exchange bias (EB) in a single magnetic film Fe3O4 at temperature T < 200 K. Irrespective...
We have systematically studied the evolution of magnetic properties, especially the coercivity and t...
We have carried out a systematic experimental investigation to address the question why thin films o...
Strain relaxation studies in epitaxial magnetite, Fe3O4, thin films grown on MgAl2O4(100) substrates...
Recent studies show that the magnetic properties of epitaxial thin films of magnetite (Fe3O4) deviat...
Fe3O4 nanowires have been fabricated based on Fe3O4 thin films grown on a-Al2O3 s0001d substrates us...
Polycrystalline Fe3O4 films have been prepared by reactive sputtering at room temperature. A transmi...
Polycrystalline Fe3O4 thin films were grown on Si(100) substrate by reactive DC sputtering at differ...
We report a direct observation of magnetic domain evolution near the Verwey transition (TV) in Fe3O4...
The occurrence of antiferromagnetic coupling at antiphase domain boundaries (APBs) of ferromagnetic ...