Spin diffusion in the Mn2+ ion system of II-VI diluted magnetic semiconductor heterostructures
arXiv:1005.4862 · doi:10.1103/PhysRevB.82.035211
Abstract
The magnetization dynamics in diluted magnetic semiconductor heterostructures based on (Zn,Mn)Se and (Cd,Mn)Te has been studied experimentally by optical methods and simulated numerically. In the samples with nonhomogeneous magnetic ion distribution this dynamics is contributed by spin-lattice relaxation and spin diffusion in the Mn spin system. The spin diffusion coefficient of 7x10^(-8) cm^2/s has been evaluated for Zn(0.99)Mn(0.01)Se from comparison of experimental and numerical results. Calculations of the giant Zeeman splitting of the exciton states and the magnetization dynamics in the ordered alloys and parabolic quantum wells fabricated by the digital growth technique show perfect agreement with the experimental data. In both structure types the spin diffusion has an essential contribution to the magnetization dynamics.
12 pages, 11 figures
References in corpus (1)
Cited by in corpus (5)
- Intrinsic oscillations of spin current polarization in a paramagnetic resonant tunneling diode
- Influence of non-magnetic impurity scattering on the spin dynamics in diluted magnetic semiconductors
- Exchange couplings for Mn ions in CdTe: validity of spin models for dilute magnetic II-VI semiconductors
- Magnetic field-induced exchange effects between Mn ions and free carriers in ZnSe quantum well through the intermediate nonmagnetic barrier studied by photoluminescence
- Synchronous Spatial Oscillation of Electron- and Mn-Spin Polarizations in Dilute-Magnetic-Semiconductor Quantum Wells under Spin-Orbit Effective Magnetic Fields