Electric manipulation of the Mn-acceptor binding energy and the Mn-Mn exchange interaction on the GaAs (110) surface by nearby As vacancies
arXiv:1412.3938 · doi:10.1103/PhysRevB.92.045304
Abstract
We investigate theoretically the effect of nearby As (arsenic) vacancies on the magnetic properties of substitutional Mn (manganese) impurities on the GaAs (110) surface, using a microscopic tight-binding model which captures the salient features of the electronic structure of both types of defects in GaAs. The calculations show that the binding energy of the Mn-acceptor is essentially unaffected by the presence of a neutral As vacancy, even at the shortest possible --Mn separation. On the other hand, in contrast to a simple tip-induced-band-bending theory and in agreement with experiment, for a positively charged As vacancy the Mn-acceptor binding energy is significantly reduced as the As vacancy is brought closer to the Mn impurity. For two Mn impurities aligned ferromagnetically, we find that nearby charged As vacancies enhance the energy level splitting of the associated coupled acceptor levels, leading to an increase of the effective exchange interaction. Neutral vacancies leave the exchange splitting unchanged. Since it is experimentally possible to switch reversibly between the two charge states of the vacancy, such a local electric manipulation of the magnetic dopants could result in an efficient real-time control of their exchange interaction.
13 pages, 15 figures, Journal
References in corpus (6)
- Atom-by-Atom Substitution of Mn in GaAs and Visualization of their Hole-Mediated Interactions
- Spatial structure of an individual Mn acceptor in GaAs
- Multiband tight-binding model of local magnetism in GaMnAs
- STM images of sub-surface Mn atoms in GaAs: evidence of hybridization of surface and impurity states
- Spin-orientation-dependent spatial structure of a magnetic acceptor state in a zincblende semiconductor
- Mapping the wavefunction of transition metal acceptor states in the GaAs surface