Quantum Entanglement in Photosynthetic Complexes

Authors

  • Casey Perez PhD
  • Riley Hill Dr.
  • Casey Turner Prof.

Keywords:

Quantum Entanglement, Photosynthesis, Energy Transfer, Quantum Models, Biophysics

Abstract

This article explores the role of quantum entanglement in photosynthetic complexes, focusing on its impact on energy transfer efficiency. The study employs advanced quantum models to simulate the behavior of entangled states in biological systems. Results indicate that quantum entanglement may enhance energy transfer rates, offering new insights into the efficiency of photosynthesis. This research could pave the way for bio-inspired quantum technologies, potentially revolutionizing energy harvesting methods.
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Author Biographies

Casey Perez, PhD

PhD
Technical University of Munich
Arcisstraße 21, 80333 München, Germany

Riley Hill, Dr.

Dr.
Massachusetts Institute of Technology
77 Massachusetts Ave, Cambridge, MA 02139, USA

Casey Turner, Prof.

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

References

Boynazarov, T., Ryu, D. H., Cho, A. Y., Abbas, H., & Choi, T. (2025). Flexible Hf0. 5Zr0. 5O2/La0. 7Sr0. 3MnO3 Heterostructure by Water-Etching Transfer for Tunable Multilevel RRAM in Neuromorphic Computing. Journal of Alloys and Compounds, 184383.

Published

2025-12-24

Issue

Section

Articles