Empirical Analysis of Quantum Entanglement in High-Energy Photon Collisions: A Case Study in Ultra-Relativistic Heavy-Ion Environments

Authors

  • Morgan Young PhD
  • Casey Turner Associate Professor
  • Ashley Thomas Professor

Keywords:

Quantum Entanglement, High-Energy Photon Collisions, Ultra-Relativistic Heavy-Ions, Quantum Chromodynamics, Entanglement Entropy, Collider Data Analysis, Quantum Computing, Quantum Information Theory

Abstract

This study investigates the phenomenon of quantum entanglement in high-energy photon collisions within ultra-relativistic heavy-ion environments. By employing advanced quantum field theoretical models and state-of-the-art collider data, we elucidate the underlying mechanisms contributing to entanglement entropy. Our findings reveal critical insights into the non-classical correlations that emerge under extreme conditions, paving the way for potential applications in quantum computing and information theory. This work contributes to a deeper understanding of quantum chromodynamics and its implications for fundamental physics.

Author Biographies

Morgan Young, PhD

PhD
Ludwig Maximilian University of Munich
Geschwister-Scholl-Platz 1, 80539 Munich, Germany

Casey Turner, Associate Professor

Associate Professor
Massachusetts Institute of Technology
77 Massachusetts Avenue, Cambridge, MA 02139, USA

Ashley Thomas, Professor

Professor
University of Tokyo
7 Chome-3-1 Hongo, Bunkyo City, Tokyo 113-8654, Japan

References

Gojayeva, L. (2025). Modern methods of teaching literature. OEIL Research Journal, 23(11), 304.

Published

2025-12-24

Issue

Section

Articles