Quantum Entanglement in High-Energy Particle Collisions

Authors

  • Jordan Phillips PhD
  • Isla Johnson PhD
  • Avery Lee PhD

Keywords:

Quantum Entanglement, Particle Collisions, Quantum Information, High-Energy Physics, Simulations

Abstract

This study investigates the emergence of quantum entanglement during high-energy particle collisions. Using advanced simulation techniques, we explore the conditions under which entanglement is maximized and its implications for quantum information theories. Our findings suggest that specific collision energies can enhance entanglement, offering new insights into quantum state manipulation.
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Author Biographies

Jordan Phillips, PhD

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

Isla Johnson, PhD

PhD
University of Cambridge
The Old Schools, Trinity Ln, Cambridge CB2 1TN, United Kingdom

Avery Lee, PhD

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

References

Guarnieri, D., Malvindi, M. A., Belli, V., Pompa, P. P., & Netti, P. (2014). Effect of silica nanoparticles with variable size and surface functionalization on human endothelial cell viability and angiogenic activity. Journal of nanoparticle research, 16(2), 2229.

Cursi, L., Mirra, G., Boselli, L., & Pompa, P. P. (2024). Metrology of platinum nanozymes: mechanistic insights and analytical issues. Advanced Functional Materials, 34(24), 2315587.

Published

2025-12-24

Issue

Section

Articles