Title :
Nuclear spin-lattice relaxation in superlattices
Author :
Shik, Alexander ; Ruda, Harry E. ; Vagner, Israel D.
Author_Institution :
Centre for Adv. Nanotechnol., Univ. of Toronto, Ont., Canada
Abstract :
The nuclear spin-lattice relaxation rate in a superlattice subjected to a strong magnetic field H parallel to its axis is studied theoretically. The energy conservation law allows flip-flop spin-reversal processes due to the hyperfine interaction between the nuclear and electron spins only in some intervals of H. In particular, the width of the highest occupied superlattice subband Δ must exceed the spin splitting of Landau levels, which results in the relaxation offset at some critical magnetic field H2. At H2 and low temperatures, the relaxation rate T1-1 versus H dependence has giant oscillations depending on the Fermi level position. The behavior of T1 can be changed by the tilting of the magnetic field, decreasing the Landau level separation at a constant spin-splitting. At some critical tilt angle, these two quantities become equal and inter-Landau-level processes come into action which drastically increases the relaxation rate.
Keywords :
Fermi level; Landau levels; electron relaxation time; g-factor; hyperfine interactions; nuclear spin-lattice relaxation; superlattices; Fermi level position; Landau levels; critical magnetic field; critical tilt angle; energy conservation law; flip-flop spin reversal processes; giant oscillations; hyperfine interaction; nuclear spin-lattice relaxation rate; nuclear-electron spins; relaxation offset; spin splitting; superlattices; Electrons; Magnetic fields; Magnetic properties; Magnetic semiconductors; Magnetic separation; Magnetic superlattices; Magnetoelectronics; Nuclear electronics; Quantization; Superconducting magnets;
Journal_Title :
Nanotechnology, IEEE Transactions on
DOI :
10.1109/TNANO.2004.840159