Relaxation of Electron Spin during High-Field Transport in GaAs Bulk
arXiv:1105.5716 · doi:10.1088/1742-5468/2010/11/P11033
Abstract
A semiclassical Monte Carlo approach is adopted to study the multivalley spin depolarization of drifting electrons in a doped n-type GaAs bulk semiconductor, in a wide range of lattice temperature ( K) and doping density (cm). The decay of the initial non-equilibrium spin polarization of the conduction electrons is investigated as a function of the amplitude of the driving static electric field, ranging between 0.1 and 6 kV/cm, by considering the spin dynamics of electrons in both the and the upper valleys of the semiconductor. Doping density considerably affects spin relaxation at low temperature and weak intensity of the driving electric field. At high values of the electric field, the strong spin-orbit coupling of electrons in the -valleys significantly reduces the average spin polarization lifetime, but, unexpectedly, for field amplitudes greater than 2.5 kV/cm, the spin lifetime increases with the lattice temperature. Our numerical findings are validated by a good agreement with the available experimental results and with calculations recently obtained by a different theoretical approach.
14 pages, 6 figures
References in corpus (11)
- Electrical Detection of Spin Transport in Lateral Ferromagnet-Semiconductor Devices
- Electron spin relaxation in bulk III-V semiconductors from a fully microscopic kinetic spin Bloch equation approach
- Transport equations for a two-dimensional electron gas with spin-orbit interaction
- Hot-electron effect in spin dephasing in -type GaAs quantum wells
- Cubic Dresselhaus Spin-Orbit Coupling in 2D Electron Quantum Dots
- Kinetic theory of spin transport in n-typed semiconductor quantum wells
- Spin lifetimes and strain-controlled spin precession of drifting electrons in zinc blende type semiconductors
- Bias-dependent electron spin lifetimes in n-GaAs and the role of donor impact ionization
- Long-Lived Spin Coherence States
- Spin-orbit coupling in bulk GaAs
- Multi-valley spin relaxation in the presence of high in-plane electric fields in -type GaAs quantum wells