English

Preparation of entangled states through Hilbert space engineering

Quantum Physics 2016-10-05 v1 Atomic Physics

Abstract

Entangled states are a crucial resource for quantum-based technologies such as quantum computers and quantum communication systems (1,2). Exploring new methods for entanglement generation is important for diversifying and eventually improving current approaches. Here, we create entanglement in atomic ions by applying laser fields to constrain the evolution to a restricted number of states, in an approach that has become known as "quantum Zeno dynamics" (3-5). With two trapped 9Be+^9\rm{Be}^+ ions, we obtain Bell state fidelities up to 0.9905+20.990^{+2}_{-5}, with three ions, a W-state (6) fidelity of 0.9107+40.910^{+4}_{-7} is obtained. Compared to other methods of producing entanglement in trapped ions, this procedure is relatively insensitive to certain imperfections such as fluctuations in laser intensity, laser frequency, and ion-motion frequencies.

Keywords

Cite

@article{arxiv.1603.03848,
  title  = {Preparation of entangled states through Hilbert space engineering},
  author = {Y. Lin and J. P. Gaebler and F. Reiter and T. R. Tan and R. Bowler and Y. Wan and A. Keith and E. Knill and S. Glancy and K. Coakley and A. S. Sørensen and D. Leibfried and D. J. Wineland},
  journal= {arXiv preprint arXiv:1603.03848},
  year   = {2016}
}

Comments

44 pages, 10 figures