English

Interplay of spin-orbit and hyperfine interactions in dynamical nuclear polarization in semiconductor quantum dots

Mesoscale and Nanoscale Physics 2016-01-20 v1

Abstract

We theoretically study the interplay of spin-orbit and hyperfine interactions in dynamical nuclear polarization in two-electron semiconductor double quantum dots near the singlet (S)(S) - triplet (T+)(T_+) anticrossing. The goal of the scheme under study is to extend the singlet (S)(S) - triplet (T0)(T_0) qubit decoherence time T2T_2^{*} by dynamically transferring the polarization from the electron spins to the nuclear spins. This polarization transfer is achieved by cycling the electron spins over the ST+S-T_+ anticrossing. Here, we investigate, both quantitatively and qualitatively, how this hyperfine mediated dynamical polarization transfer is influenced by the Rashba and Dresselhaus spin-orbit interaction. In addition to T2T_2^*, we determine the singlet return probability PsP_s, a quantity that can be measured in experiments. Our results suggest that the spin-orbit interaction establishes a mechanism that can polarize the nuclear spins in the opposite direction compared to hyperfine mediated nuclear spin polarization. In materials with relatively strong spin-orbit coupling, this interplay of spin-orbit and hyperfine mediated nuclear spin polarizations prevents any notable increase of the ST0S-T_0 qubit decoherence time T2T_2^{*}.

Keywords

Cite

@article{arxiv.1408.6700,
  title  = {Interplay of spin-orbit and hyperfine interactions in dynamical nuclear polarization in semiconductor quantum dots},
  author = {Marko J. Rančić and Guido Burkard},
  journal= {arXiv preprint arXiv:1408.6700},
  year   = {2016}
}

Comments

10 pages, 11 figures