English

Entangled-State Cycles of Atomic Collective-Spin States

Quantum Physics 2011-10-28 v1

Abstract

We study quantum trajectories of collective atomic spin states of NN effective two-level atoms driven with laser and cavity fields. We show that interesting ``entangled-state cycles'' arise probabilistically when the (Raman) transition rates between the two atomic levels are set equal. For odd (even) NN, there are (N+1)/2(N+1)/2 (N/2N/2) possible cycles. During each cycle the NN-qubit state switches, with each cavity photon emission, between the states (N/2,m>±N/2,m>)/2(|N/2,m>\pm |N/2,-m>)/\sqrt{2}, where N/2,m>|N/2,m> is a Dicke state in a rotated collective basis. The quantum number mm (>0>0), which distinguishes the particular cycle, is determined by the photon counting record and varies randomly from one trajectory to the next. For even NN it is also possible, under the same conditions, to prepare probabilistically (but in steady state) the Dicke state N/2,0>|N/2,0>, i.e., an NN-qubit state with N/2N/2 excitations, which is of particular interest in the context of multipartite entanglement.

Keywords

Cite

@article{arxiv.0705.3506,
  title  = {Entangled-State Cycles of Atomic Collective-Spin States},
  author = {A. Chia and A. S. Parkins},
  journal= {arXiv preprint arXiv:0705.3506},
  year   = {2011}
}

Comments

10 pages, 9 figures