Effect of Dresselhaus spin-orbit coupling on spin dephasing in asymmetric and macroscopically symmetric (110)-grown quantum wells
arXiv:1304.6600 · doi:10.1103/PhysRevB.87.235301
Abstract
We develop the microscopic theory of electron spin dephasing in (110)-grown quantum wells where the electron scattering time is comparable to or exceeds the period of spin precession in the effective magnetic field caused by spin-orbit coupling. Structures with homogeneous and fluctuating Rashba field, which triggers the dephasing of electron spins aligned along the growth direction, are analyzed. We show that the Dresselhaus field, which is always present in zinc-blende-type quantum wells, suppresses the spin dephasing enabling very long spin lifetime of conduction electrons. The dependence of the spin lifetime on the electron mobility is found to be nonmonotonic reaching the minimum in structures where the scattering time is comparable to the period of spin precession in the effective magnetic field.
7 pages, 5 figures
References in corpus (6)
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- Suppression of the D'yakonov-Perel' spin relaxation mechanism for all spin components in [111] zincblende quantum wells
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- Magnetic Field Effect on Electron Spin Dynamics in (110) GaAs Quantum wells
- Limitation of electron mobility from hyperfine interaction in ultra-clean quantum wells and topological insulators
- Weak localization in low-symmetry quantum wells
- Spin currents of exciton polaritons in a microcavity with (110)-oriented quantum well
- Anomalous D'yakonov-Perel' spin relaxation in InAs (110) quantum wells under strong magnetic field: role of Hartree-Fock self-energy
- Magnetic switching of spin-scattering centers in Dresselhaus [110] circuits