Experimental Activation of Strong Local Passive States with Quantum Information
arXiv:2203.16269 · doi:10.1103/PhysRevLett.130.110801
Abstract
Strong local passivity is a property of multipartite quantum systems from which it is impossible to extract energy locally. Surprisingly, if the strong local passive state displays entanglement, it could be possible to locally activate energy density by adding classical communication between different partitions of the system, through so-called "quantum energy teleportation" protocols. Here, we report both the first experimental observation of local activation of energy density on an entangled state and the first realization of a quantum energy teleportation protocol using nuclear magnetic resonance on a bipartite quantum system.
11 pages, 7 figures
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- Harvesting entanglement from the Lorentz-violating quantum field vacuum in a dipolar Bose-Einstein condensate
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- Probing nonlocal correlations in magnetic rare-earth clusters
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- A perspective on Lindblad's Non-Equilibrium Entropy
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