Locally Accessible Information of Multisite Quantum Ensembles Violates Monogamy
arXiv:1108.2420 · doi:10.1103/PhysRevA.85.052103
Abstract
Locally accessible information is a useful information-theoretic physical quantity of an ensemble of multiparty quantum states. We find it has properties akin to quantum as well as classical correlations of single multiparty quantum states. It satisfies monotonicity under local quantum operations and classical communication. However we show that it does not follow monogamy, an important property usually satisfied by quantum correlations, and actually violates any such relation to the maximal extent. Violation is obtained even for locally indistinguishable, but globally orthogonal, multisite ensembles. The results assert that while single multiparty quantum states are monogamous with respect to their shared quantum correlations, ensembles of multiparty quantum states may not be so. The results have potential implications for quantum communication systems.
6 pages, RevTeX4
References in corpus (6)
- Ultracold atomic gases in optical lattices: mimicking condensed matter physics and beyond
- General Monogamy Inequality for Bipartite Qubit Entanglement
- Monogamy inequality for distributed Gaussian entanglement
- Optimal Cloning and Singlet Monogamy
- Weaker entanglement guarantees stronger entanglement
- Classification and monogamy of three-qubit biseparable Bell correlations
Cited by in corpus (9)
- Quantum discord and its allies: a review
- Monogamy of quantum correlations reveals frustration in a quantum Ising spin system: Experimental demonstration
- All Multiparty Quantum States Can Be Made Monogamous
- Multipartite Entanglement Accumulation in Quantum States: Localizable Generalized Geometric Measure
- Characterization of Tripartite Quantum States with Vanishing Monogamy Score
- Light Cone-Like Behavior of Quantum Monogamy Score and Multisite Entanglement
- Exclusion Principle for Quantum Dense Coding
- Shared Purity of Multipartite Quantum States
- Unextendible entangled bases and more nonlocality with less entanglement