Evaluating Quantum Entanglement Dynamics in Photonic Systems: An Empirical Case Study

Authors

  • Cameron Moore Dr. Sc
  • Sam Mitchell PhD
  • Avery Parker Associate Professor
  • Cameron Young Professor

Keywords:

Quantum Entanglement, Photonic Systems, Entanglement Dynamics, Quantum Measurement, Experimental Quantum Physics, Decoherence Effects, Robust Quantum Systems

Abstract

Quantum entanglement remains a cornerstone of modern quantum mechanics, influencing various applications ranging from quantum computing to secure communications. This study evaluates the entanglement dynamics in photonic systems through extensive empirical analysis. We employed a sophisticated setup involving single-photon sources, beam splitters, and detectors, utilizing both theoretical and experimental frameworks. Our findings demonstrate significant variations in entanglement stability under fluctuating environmental conditions, revealing an entanglement decay rate of 0.89 ± 0.02 per millisecond under controlled settings. This research highlights the critical need for robust quantum systems that can maintain entanglement despite external perturbations, paving the way for more resilient quantum technologies.

Author Biographies

Cameron Moore, Dr. Sc

Dr. Sc
Technische Universität München
Arcisstraße 21, 80333 München, Germany

Sam Mitchell, PhD

PhD
Massachusetts Institute of Technology
77 Massachusetts Ave, Cambridge, MA 02139, USA

Avery Parker, Associate Professor

Associate Professor
University of Toronto
27 King's College Cir, Toronto, ON M5S 1A1, Canada

Cameron Young, Professor

Professor
Australian National University
Canberra ACT 2601, Australia

References

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Published

2024-12-25

Issue

Section

Articles