4.8 Article

Testing Real Quantum Theory in an Optical Quantum Network

期刊

PHYSICAL REVIEW LETTERS
卷 128, 期 4, 页码 -

出版社

AMER PHYSICAL SOC
DOI: 10.1103/PhysRevLett.128.040402

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资金

  1. DOC Fellowship of the Austrian Academy of Sciences (OAW)
  2. Lise Meitner Fellowship of the Austrian Academy of Sciences [M 2812-N, M 3109-N]
  3. Key-Area Research and Development Program of Guangdong Province [2020B0303010001, 2019ZT08X324]
  4. Guangdong Provincial Key Laboratory Grant [2019B121203002]
  5. National Key RAMP
  6. D Program of China [2021YFE0113100, 2018YFA0306703]
  7. Sichuan Innovative Research Team Support Fund [2021JDTD0028]
  8. Swiss National Fund Early Mobility Grants [P2GEP2 191444, P2GEP2 194800]
  9. Wenner-Gren Foundations
  10. Government of Spain [CEX2019-000910-S]
  11. Fundacio Cellex
  12. Fundacio Mir-Puig, Generalitat de Catalunya (CERCA)
  13. AXA Chair in Quantum Information Science
  14. Swiss National Center of Competence in Research-The Mathematics of Physics (Swiss NCCR SwissMap)
  15. ERC AdG CERQUTE
  16. Swiss National Science Foundation (SNF) [P2GEP2_194800, P2GEP2_191444] Funding Source: Swiss National Science Foundation (SNF)

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This article discusses the debate over the fundamental role of complex numbers in quantum theory and demonstrates the importance of complex numbers in entanglement swapping scenarios through experimental tests. The results show that real quantum theory cannot fully describe the phenomena in these scenarios.
Quantum theory is commonly formulated in complex Hilbert spaces. However, the question of whether complex numbers need to be given a fundamental role in the theory has been debated since its pioneering days. Recently it has been shown that tests in the spirit of a Bell inequality can reveal quantum predictions in entanglement swapping scenarios that cannot be modeled by the natural real-number analog of standard quantum theory. Here, we tailor such tests for implementation in state-of-the-art photonic systems. We experimentally demonstrate quantum correlations in a network of three parties and two independent EPR sources that violate the constraints of real quantum theory by over 4.5 standard deviations, hence disproving real quantum theory as a universal physical theory.

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