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July 27, 20250 citations

Collapse is Relational: Testing the Temporal Structure of Decoherence

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AGArie Todd Greenleaf

Key Points

  • MAIN FINDING: The Temporal-Binding Collapse Theorem shows wave-function collapse depends on detector timing.
  • KEY EVIDENCE: Coarse-grained measurements create a decoherence channel proportional to detector's temporal binding window τ.
  • APPROACH: The study derives a theorem and proposes experiments measuring coherence time of entangled photons across SNSPDs.
  • SIGNIFICANCE: Results could challenge standard theories of decoherence and provide insights into quantum collapse mechanisms.

Abstract

Wave-function collapse is usually regarded as independent of a detector’s temporal resolution. In this Rapid Communication that view is challenged. I derive the Temporal-Binding Collapse Theorem and show that coarse-grained measurements introduce a universal decoherence channel proportional to 1 ⁄ τ, where τ is the detector’s temporal binding window. The theorem predicts tc(τ) = tc(E) + τ,so the measured coherence time grows linearly with detector timescale—behavior absent from standard decoherence theory and objective-collapse models. This relation is placed in a unified context with the quantum-Zeno effect, existing CSL bounds, and recent photonic experiments that employ variable-jitter superconducting detectors. Finally, a falsifiable protocol is proposed: the coherence time of entangled photons will be measured across a bank of SNSPDs spanning τ = 5–500 ps. Observation of a unit-slope tc – τ relationship would demonstrate that collapse is relational, governed by the observer’s timescale; any deviation would either falsify the theorem or establish a lower bound on intrinsic collapse mechanisms.

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Cite This Study

Arie Todd Greenleaf (2025) studied this question.

synapsesocial.com/papers/689a0939e6551bb0af8ce680https://doi.org/10.31234/osf.io/8bmyd_v1
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