Experimental Demonstration that No Tripartite-Nonlocal Causal Theory Explains Nature's Correlations
Abstract
Quantum theory predicts the existence of genuinely tripartite-entangled states, which cannot be obtained from local operations over any bipartite entangled states and unlimited shared randomness. Some of us recently proved that this feature is a fundamental signature of quantum theory. The state gives rise to tripartite quantum correlations which cannot be explained by any causal theory limited to bipartite nonclassical common causes of any kind (generalising entanglement) assisted with unlimited shared randomness. Hence, any conceivable physical theory which would reproduce quantum predictions will necessarily include genuinely tripartite resources. In this work, we verify that such tripartite correlations are experimentally achievable. We derive a new device-independent witness capable of falsifying causal theories wherein nonclassical resources are merely bipartite. Using a high-performance photonic states with fidelities of , we provide a clear experimental violation of that witness by more than standard deviation, under the locality and fair sampling assumption. We generalise our work to the state, obtaining correlations which cannot be explained by any causal theory limited to tripartite nonclassical common causes assisted with unlimited shared randomness.
Keywords
Cite
@article{arxiv.2201.12754,
title = {Experimental Demonstration that No Tripartite-Nonlocal Causal Theory Explains Nature's Correlations},
author = {Huan Cao and Marc-Olivier Renou and Chao Zhang and Gaël Massé and Xavier Coiteux-Roy and Bi-Heng Liu and Yun-Feng Huang and Chuan-Feng Li and Guang-Can Guo and Elie Wolfe},
journal= {arXiv preprint arXiv:2201.12754},
year = {2022}
}
Comments
See related work by Ya-Li Mao et al. (arXiv:2201.12753). 12 pages (7 of appendices), 5 figures (2 in appendices). H.C., M-O.R. and C.Z contributed equally to this work