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QUANTUM DECOHERENCE × ARCHAEOACOUSTICS

Jessica Samcoff

Zenodo (CERN European Organization for Nuclear Research) March 19, 2026 DOI: 10.5281/zenodo.19120990 (opens in new tab)

Study at a glance

AI-extracted from the abstract
Characteristics Theoretical or philosophical paper Peer reviewed
Key points Argues that resonant acoustic environments, particularly ancient megalithic chambers sustaining standing waves in the 95–120 Hz range, may function as macroscopic decoherence shields for biological quantum systems. Proposes this as a physical mechanism for the Resonance Imprinting Hypothesis, links the Orch-OR model to archaeoacoustic data, and suggests specific geological substrates create ambient decoherence-resistant zones that could explain geographic clustering of anomalous consciousness phenomena.

Abstract

A Novel Intersection for the Unified Framework Formal Theoretical Section & Experimental Protocol Abstract This section proposes a novel theoretical bridge between quantum decoherence theory and archaeoacoustic research, two established frameworks that have never been formally connected. We argue that resonant acoustic environments — particularly ancient megalithic chambers engineered to sustain standing wave patterns in the 95–120 Hz range — may function as macroscopic decoherence shields for biological quantum systems. This hypothesis provides a physical mechanism for the Resonance Imprinting Hypothesis (RIH) developed within the Unified Framework, connects the Penrose-Hameroff Orchestrated Objective Reduction (Orch-OR) model to empirical archaeoacoustic data, and generates testable predictions that can be evaluated with existing laboratory equipment. The intersection also integrates the Telluric Current Transfer (TCT) model by proposing that geological substrates with specific mineralogical and electromagnetic properties create ambient decoherence-resistant zones, explaining the geographic clustering of anomalous consciousness phenomena documented in the Unified Framework’s statistical proxy analysis.