Dynamics and decoherence in the central spin model using exact methods
arXiv:1005.0001 · doi:10.1103/PhysRevB.82.161308
Abstract
The dynamics and decoherence of an electronic spin-1/2 qubit coupled to a bath of nuclear spins via hyperfine interactions in a quantum dot is studied. We show how exact results from the integrable solution can be used to understand the dynamic behavior of the qubit. It is possible to predict the main frequency contributions and their broadening for relatively general initial states analytically, leading to an estimate of the corresponding decay times. Furthermore, for a small bath polarization, a new low-frequency time scale is observed.
4 pages, 2 figures. Published version. See also http://www.physik.uni-kl.de/eggert/papers/index.html
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- On the determinant representations of Gaudin models' scalar products and form factors
- Interacting spins in a cavity: finite size effects and symmetry-breaking dynamics
- Competing interactions in semiconductor quantum dots