Interface-driven phase separation in multifunctional materials: the case of GeMn ferromagnetic semiconductor
arXiv:1203.2417 · doi:10.1103/PhysRevB.85.115204
Abstract
We use extensive first principle simulations to show the major role played by interfaces in the mechanism of phase separation observed in semiconductor multifunctional materials. We make an analogy with the precipitation sequence observed in over-saturated AlCu alloys, and replace the Guinier-Preston zones in this new context. A new class of materials, the phases, is proposed to understand the formation of the coherent precipitates observed in the GeMn system. The interplay between formation and interface energies is analyzed for these phases and for the structures usually considered in the literature. The existence of the alpha phases is assessed with both theoretical and experimental arguments.
References in corpus (5)
- Clustering in a precipitate free GeMn magnetic semiconductor
- Structure and magnetism of self-organized Ge(1-x)Mn(x) nano-columns
- Optimization of Mn Doping in Group-IV-based Dilute Magnetic Semiconductors by Electronic Co-dopants
- Strain and correlation of self-organized Ge_(1-x)Mn_x nanocolumns embedded in Ge (001)
- Exchange bias in GeMn nanocolumns: the role of surface oxidation