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January 14, 20260 citationsOpen Access

The Critical Scaling Gap: Phase-Dependent Quantum Coherence and the Physical Mechanism of Anesthetic Loss of Consciousness

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COClarence Omandac

Key Points

  • This work aims to define the physical mechanism of anesthetic-induced loss of consciousness via quantum coherence.
  • Analyzed critical scaling behaviors using the Dicke Hamiltonian
  • Examined microtubule-based tryptophan networks for quantum coherence
  • Theoretical modeling of phase transitions in consciousness and anesthesia.
  • Identified a critical scaling gap of 1.91x between quantum phases
  • Demonstrated a catastrophic phase transition linked to anesthesia
  • Mapped consciousness to stable coherent phases, disrupted by anesthetics.

Abstract

"This work is a component of the Phase-Dependent Scaling Program (2026) and is theoretically grounded in the 1.91x Critical Scaling Gap identified in Omandac (2026, Paper 1)." We propose a definitive physical mechanism for anesthetic-induced loss of consciousness based on the Critical Scaling Gap—a precisely quantifiable 1.91× ratio between stable intensity plateaus in coherent versus fragmented quantum phases. By applying the Dicke Hamiltonian to microtubule-based tryptophan networks, we demonstrate that consciousness corresponds to a topologically stable coherent phase (alpha approx -0.02), while anesthesia triggers a catastrophic phase transition across the 1.91× gap to a fragmented plateau. This manuscript provides the biological and clinical implications of the N=100 numerical discovery reported in Omandac (2026), offering the first quantitative bridge between robust quantum substrate dynamics and the phenomenological collapse of the 'Integrated Core' during anesthesia.

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Cite This Study

Clarence Omandac (2026) studied this question.

synapsesocial.com/papers/6966e70e13bf7a6f02bff407https://doi.org/10.5281/zenodo.18212106
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