Reference frame independent Einstein-Podolsky-Rosen steering
arXiv:1611.07122 · doi:10.1103/PhysRevA.98.022333
Abstract
Protocols for testing or exploiting quantum correlations-such as entanglement, Bell nonlocality, and Einstein-Podolsky-Rosen steering- generally assume a common reference frame between two parties. Establishing such a frame is resource-intensive, and can be technically demanding for distant parties. While Bell nonlocality can be demonstrated with high probability for a large class of two-qubit entangled states when the parties have one or no shared reference direction, the degree of observed nonlocality is measurement-orientation dependent and can be arbitrarily small. In contrast, we theoretically prove that steering can be demonstrated with 100% probability, for a larger class of states, in a rotationally-invariant manner, and experimentally demonstrate rotationally-invariant steering in a variety of cases. We also show, by comparing with the steering inequality of Cavalcanti et al. [J. Opt. Soc. Am. B 32, A74 (2015)], that the steering inequality we derive is the optimal rotationally invariant one for the case of two settings per side and two-qubit states having maximally mixed reduced (local) states.
References in corpus (8)
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Cited by in corpus (8)
- Experimental validation of quantum steering ellipsoids and tests of volume monogamy relations
- Experimental demonstration of measurement-device-independent measure of quantum steering
- Experimental demonstration of robust quantum steering
- Quantum steering with vector vortex photon states with the detection loophole closed
- Experimental verification of the steering ellipsoid zoo via two-qubit states
- Quantum Steering on IBMQ
- Analysis of Quantum Steering Measures
- Correcting for finite statistics effects in a quantum steering experiment