
pmid: 23033068
pmc: PMC3493644
The idea that events obey a definite causal order is deeply rooted in our understanding of the world and at the basis of the very notion of time. But where does causal order come from, and is it a necessary property of nature? We address these questions from the standpoint of quantum mechanics in a new framework for multipartite correlations which does not assume a pre-defined global causal structure but only the validity of quantum mechanics locally. All known situations that respect causal order, including space-like and time-like separated experiments, are captured by this framework in a unified way. Surprisingly, we find correlations that cannot be understood in terms of definite causal order. These correlations violate a 'causal inequality' that is satisfied by all space-like and time-like correlations. We further show that in a classical limit causal order always arises, which suggests that space-time may emerge from a more fundamental structure in a quantum-to-classical transition.
13 pages, 5 figures
1300 Biochemistry, 103025 Quantenmechanik, FOS: Physical sciences, Genetics and Molecular Biology, General Relativity and Quantum Cosmology (gr-qc), Quantum mechanics, General Relativity and Quantum Cosmology, Article, 103028 Theory of relativity, 103026 Quantum optics, 103028 Relativitätstheorie, 3100 Physics and Astronomy, Quantum Physics, Physique, 103036 Theoretische Physik, 103026 Quantenoptik, 1600 Chemistry, Multidisciplinary Sciences, 103036 Theoretical physics, Science & Technology - Other Topics, 103025 Quantum mechanics, 190, Quantum Physics (quant-ph), Theoretical physics
1300 Biochemistry, 103025 Quantenmechanik, FOS: Physical sciences, Genetics and Molecular Biology, General Relativity and Quantum Cosmology (gr-qc), Quantum mechanics, General Relativity and Quantum Cosmology, Article, 103028 Theory of relativity, 103026 Quantum optics, 103028 Relativitätstheorie, 3100 Physics and Astronomy, Quantum Physics, Physique, 103036 Theoretische Physik, 103026 Quantenoptik, 1600 Chemistry, Multidisciplinary Sciences, 103036 Theoretical physics, Science & Technology - Other Topics, 103025 Quantum mechanics, 190, Quantum Physics (quant-ph), Theoretical physics
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