| Literature DB >> 26548649 |
Xue-Ping Zang1,2, Ming Yang1, Fatih Ozaydin3, Wei Song4, Zhuo-Liang Cao4.
Abstract
W state is a key resource in quantum communication. Fusion technology has been proven to be a good candidate for preparing a large-size W state from two or more small-size W states in linear optical system. It is of great importance to study how to fuse W states via light-matter interface. Here we show that it is possible to prepare large-size W-state networks using a fusion mechanism in cavity QED system. The detuned interaction between three atoms and a vacuum cavity mode constitute the main fusion mechanism, based on which two or three small-size atomic W states can be fused into a larger-size W state. If no excitation is detected from those three atoms, the remaining atoms are still in the product of two or three new W states, which can be re-fused. The complicated Fredkin gate used in the previous fusion schemes is avoided here. W states of size 2 can be fused as well. The feasibility analysis shows that our fusion processes maybe implementable with the current technology. Our results demonstrate how the light-matter interaction based fusion mechanism can be realized, and may become the starting point for the fusion of multipartite entanglement in cavity QED system.Entities:
Year: 2015 PMID: 26548649 PMCID: PMC4637831 DOI: 10.1038/srep16245
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1The setup for fusion of two W states.
D1 and D2 denote the atomic detectors. N-atom W state , M-atom W state and an auxiliary atom are fused into a (N + M − 1)-atom W state .
Figure 2The setup for fusion of three W states.
D1, D2 and D3 denote the atomic detectors. N-atom W state , M-atom W state and T-atom W state are fused into a (N + M + T − 3)-atom W state . If the fusion process fails, the three W states , and can be re-fused by the same procedure.