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May 18, 20260 citationsOpen Access

The Seam in the Leaf: Why Photosynthesis Works at the Exact Boundary Between Order and Chaos

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NSNikita Sergeyevich Shchevyev

Key Points

  • The essay aims to elucidate why photosynthesis operates at the seam condition between coherence and decoherence.
  • Companion essay to a physics preprint detailing the quantum transport mechanism in photosynthesis.
  • Discussion of the two-failure-mode structure of ENAQT and decoherence-time predictions for the FMO complex and FCP.
  • Predicted decoherence time for FMO complex was 61 fs, matching experimental values within 2%.
  • Demonstrated a 36% thermodynamic margin advantage at the seam regime.
  • Forward prediction of 77 fs for FCP, a measurement not yet conducted.

Abstract

A plain-language companion essay to the physics preprint "Coherence-Decoherence Rate Matching in Photosynthetic Quantum Transport" (doi:10.5281/zenodo.20246828). Written for readers in adjacent fields and for a general scientific audience. The essay explains why photosynthesis operates at the precise boundary between quantum coherence and environmental noise — a point called the seam condition (R = Jτ/ℏ = 1). It covers the two-failure-mode structure of environment-assisted quantum transport (ENAQT), the parameter-free decoherence-time prediction for the FMO complex (61 fs from J alone, within 2% of experiment), the 36% thermodynamic margin advantage of the seam regime, and a forward prediction of 77 fs for diatom fucoxanthin-chlorophyll protein (FCP) — not yet measured. The second half explains why the seam condition follows from the Archontology predomain framework (H > K), which establishes that the quantum optimum and the thermodynamic optimum coincide at R = 1 by structural necessity, not evolutionary coincidence.

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Cite This Study

Nikita Sergeyevich Shchevyev (2026) studied this question.

synapsesocial.com/papers/6a0aad145ba8ef6d83b709ebhttps://doi.org/10.5281/zenodo.20247244
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