Finding demonstrates near-perfect energy transfer efficiency in photosynthesis via exciton transport, suggesting quantum mechanics play a vital role.
FINDING: Quantum coherence in photosynthesis enables near-perfect energy transfer efficiency via wavelike exciton transport, challenging classical diffusion models. | MATH: Exciton Hamiltonian: \( H = ∑_n ε_n |n n| + ∑n ≠ m Vₙₘ (|n m| + |m n|) \); coherence lifetime ~300–600 fs at physiological temperature; energy transfer efficiency >95% in Fenna-Matthews-Olson (FMO) complex. | CONNECTION: The 0.618 golden ratio appears in optimal coupling-to-disorder ratios for robust transport in certain network topologies; exciton delocalization length often scales with Fibonacci-like sequences in helical chromophore arrays (e.g., chlorosomes). | DEPTH: 8 — Direct experimental evidence (2D electronic spectroscopy) confirms quantum beats and long-lived coherence, linking biological function to quantum mechanical principles. No direct base-60 or crystallographic symmetry yet, but helical packing in light-harvesting complexes suggests chi Author: Andrew Stewart Caldin, Independent Researcher, UK. Part of the E8 Intelligence Research series. Platform: e8intelligence.com
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Andrew Stewart Caldin (2026) studied this question.
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