| Literature DB >> 33267116 |
Bing Liu1,2, Dong-Xiao Li1,2, Xiao-Qiang Shao1,2.
Abstract
A scheme is proposed to generate maximally entangled states of two Λ -type atoms trapped in separate overdamped optical cavities using quantum-jump-based feedback. This proposal can stabilize not only the singlet state, but also the other three triplet states by alternating the detuning parameter and relative phase of the classical fields. Meanwhile it is convenient to manipulate atoms, and much more robust against spontaneous emission of atoms. The parameters related to the potential experiment are analyzed comprehensively and it is confirmed that the quantum feedback technology is a significant tool for entanglement production with a high fidelity.Entities:
Keywords: Bell state; dissipative dynamics; quantum-jump-based feedback
Year: 2019 PMID: 33267116 PMCID: PMC7514889 DOI: 10.3390/e21040402
Source DB: PubMed Journal: Entropy (Basel) ISSN: 1099-4300 Impact factor: 2.524
Figure 1Schematic view of the atom-cavity system. The transition is driven by a classical field with a time-independent Rabi frequency ; the transition is coupled to the cavity with coupling constant g; and are corresponding detuning parameters. is the decay rate of each cavity mode. The transition is additionally driven by a microwave field with a Rabi frequency and the hopping rate between neighbouring cavities is G.
Figure 2The concurrence of the system at the time as a function of and as initial state is , without (a,b) or with (c,d) a large decay rate of atomic spontaneous emission ().
Figure 3The concurrence of the system in the case of changing the initial state only () without (a,b) or with (c,d) a large decay rate of atomic spontaneous emission ().
Figure 4The fidelities for the states and under different initial states (a) , (b) with the full master equation. The selection of related parameters is , , , and the driving frequency is set at .