English

Singlet-triplet decoherence due to nuclear spins in a double quantum dot

Mesoscale and Nanoscale Physics 2007-05-23 v1

Abstract

We have evaluated hyperfine-induced electron spin dynamics for two electrons confined to a double quantum dot. Our quantum solution accounts for decay of a singlet-triplet correlator even in the presence of a fully static nuclear spin system, with no ensemble averaging over initial conditions. In contrast to an earlier semiclassical calculation, which neglects the exchange interaction, we find that the singlet-triplet correlator shows a long-time saturation value that differs from 1/2, even in the presence of a strong magnetic field. Furthermore, we find that the form of the long-time decay undergoes a transition from a rapid Gaussian to a slow power law (1/t3/2\sim 1/t^{3/2}) when the exchange interaction becomes nonzero and the singlet-triplet correlator acquires a phase shift given by a universal (parameter independent) value of 3π/43\pi/4 at long times. The oscillation frequency and time-dependent phase shift of the singlet-triplet correlator can be used to perform a precision measurement of the exchange interaction and Overhauser field fluctuations in an experimentally accessible system. We also address the effect of orbital dephasing on singlet-triplet decoherence, and find that there is an optimal operating point where orbital dephasing becomes negligible.

Keywords

Cite

@article{arxiv.cond-mat/0506090,
  title  = {Singlet-triplet decoherence due to nuclear spins in a double quantum dot},
  author = {W. A. Coish and Daniel Loss},
  journal= {arXiv preprint arXiv:cond-mat/0506090},
  year   = {2007}
}

Comments

12 pages, 4 figures