PhotoniX, Volume. 5, Issue 1, 39(2024)

Isolating the classical and quantum coherence of a multiphoton system

Chenglong You1,*... Mingyuan Hong1, Fatemeh Mostafavi1, Jannatul Ferdous1, Roberto de J. León-Montiel2, Riley B. Dawkins1 and Omar S. Magaña-Loaiza1 |Show fewer author(s)
Author Affiliations
  • 1Quantum Photonics Laboratory, Department of Physics & Astronomy, Baton Rouge, 70803 LA, USA
  • 2Instituto de Ciencias Nucleares, Universidad Nacional Autónoma de México, Apartado Postal 70-543, 04510 Ciudad de México, México
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    The classical properties of thermal light fields were instrumental in shaping our early understanding of light. Before the invention of the laser, thermal light was used to investigate the wave-particle duality of light. The subsequent formulation of the quantum theory of electromagnetic radiation later confirmed the classical nature of thermal light fields. Here, we fragment a pseudothermal field into its multiparticle constituents to demonstrate that it can host multiphoton dynamics mediated by either classical or quantum properties of coherence. This is shown in a forty-particle system through a process of scattering mediated by twisted paths endowed with orbital angular momentum. This platform enables accurate projections of the scattered pseudothermal system into isolated multiphoton subsystems governed by quantum dynamics. Interestingly, the isolated multiphoton subsystems exhibiting quantum coherence produce interference patterns previously attributed to entangled optical systems. As such, our work unveils novel mechanisms to isolate quantum systems from classical fields. This possibility opens new paradigms in quantum physics with enormous implications for the development of robust quantum technologies.

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    Chenglong You, Mingyuan Hong, Fatemeh Mostafavi, Jannatul Ferdous, Roberto de J. León-Montiel, Riley B. Dawkins, Omar S. Magaña-Loaiza. Isolating the classical and quantum coherence of a multiphoton system[J]. PhotoniX, 2024, 5(1): 39

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    Paper Information

    Category: Research Articles

    Received: Aug. 27, 2024

    Accepted: Nov. 20, 2024

    Published Online: Jan. 23, 2025

    The Author Email: You Chenglong (cyou2@lsu.edu)

    DOI:10.1186/s43074-024-00153-4

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