Spin-orbit interaction and anomalous spin relaxation in carbon nanotube quantum dots
arXiv:0712.3767 · doi:10.1103/PhysRevB.77.235301
Abstract
We study spin relaxation and decoherence caused by electron-lattice and spin-orbit interaction and predict striking effects induced by magnetic fields . For particular values of , destructive interference occurs resulting in ultralong spin relaxation times exceeding tens of seconds. For small phonon frequencies , we find a spin-phonon noise spectrum -- a novel dissipation channel for spins in quantum dots -- which can reduce by many orders of magnitude. We show that nanotubes exhibit zero-field level splitting caused by spin-orbit interaction. This enables an all-electrical and phase-coherent control of spin.
19 pages, 12 figures
References in corpus (4)
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- Electronic Transport Spectroscopy of Carbon Nanotubes in a Magnetic Field
- Fabry-Perot interference, Kondo effect and Coulomb blockade in carbon nanotubes