4.6 Article

Full multipartite steering inseparability, genuine multipartite steering, and monogamy for continuous-variable systems

期刊

PHYSICAL REVIEW A
卷 105, 期 1, 页码 -

出版社

AMER PHYSICAL SOC
DOI: 10.1103/PhysRevA.105.012202

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资金

  1. Australian Research Council [DP180102470]
  2. LabEx ENS-ICFP Grants [ANR-10-LABX-0010, ANR10-IDEX-0001-02 PSL*]
  3. MCIN
  4. AEI [PID2020-115761RJ-I00]
  5. la Caixa Foundation [100010434]
  6. European Union's Horizon 2020 research and innovation program under Marie Sklodowska-Curie Grant [847648, LCF/BQ/PI21/11830025]
  7. Nippon Telegraph and Telephone (NTT) Research

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The paper introduces methods for detecting the genuine N-partite steering inseparability through deriving inequalities, distinguishing between full N-partite steering inseparability and stricter genuine N-partite steering, and using variances of quadrature phase amplitudes for detection. It also discusses the creation and detection of genuine N-partite steerable states and experimental confirmation of tripartite steering, as well as the distribution of bipartite steering and entanglement among systems in the tripartite case. The inequalities derived in the paper are not based on the assumption of Gaussian states, providing an advantage for quantum communication protocols.
We derive inequalities sufficient to detect the genuine N-partite steering of N distinct systems. Here, we are careful to distinguish between the concepts of full N-partite steering inseparability (where steering is confirmed individually for all bipartitions of the N systems, thus negating the bilocal hidden state model for each bipartition) and genuine N-partite steering (which excludes all convex combinations of the bilocal hidden state models). Other definitions of multipartite steering are possible and we also derive inequalities to detect a stricter genuine N-partite steering where only one site needs to be trusted. The inequalities are expressed as variances of quadrature phase amplitudes and thus apply to continuous-variable systems. We show how genuine N-partite steerable states can be created and detected for the nodes of a network formed from a single-mode squeezed state passed through a sequence of N - 1 beam splitters. A stronger genuine N-partite steering is created, if one uses two squeezed inputs or N squeezed inputs. We are able to confirm that genuine tripartite steering (by the above definition and by the stricter definition) has been realized experimentally. Finally, we analyze how bipartite steering and entanglement are distributed among the systems in the tripartite case, illustrating with monogamy inequalities. While we use Gaussian states to benchmark the criteria, the inequalities derived in this paper are not based on the assumption of Gaussian states, which gives an advantage for quantum communication protocols.

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