| _version_ | 1866901347447603200 |
|---|---|
| author | Faical, Lami |
| author_facet | Faical, Lami |
| contents | <p>Version note<br>This report extends the Time Frameworks (TF1.0, TF2.0) with an operational account of quantum superposition. Whereas TF1.0/TF2.0 formalize time as sequences of Planck ticks and calibrate particle-as-clock thinking, the present framework applies that timing logic directly to superposition across platforms.</p> <p>What this work does<br>We model superposition as a time-resolved process: within a detector observation window Δt_obs, only a fraction of phase-preserved frames contributes coherently. Let γ(Δt_obs) denote that coherence fraction. For generic two-path/two-state scenarios, the measurable signal decomposes into an incoherent baseline plus a γ-weighted interference term, so fringe visibility obeys the operational law V = γ. As Δt_obs shortens (or effective which-path information increases), γ decreases monotonically and V falls accordingly.</p> <p>Predictions & checks<br>– Time gating reduces V in a controlled, monotonic way; long coherent dwell times increase V.<br>– The description is consistent with V² + D² ≤ 1, with D the distinguishability.<br>– The same timing control applies beyond photons (e.g., atom/matter-wave interferometry) by using the system’s natural frequency as a clock and normalizing to the Planck-tick scale.</p> <p>Relation to other frameworks<br>This Superposition framework is an operational supplement to Time framework 1.0 and Time framework 2.0, and it complements the Photon framework v1.0 (double-slit specialization). Together they provide a unified, time-framed route from discrete ticks to testable visibility laws.</p> <p>License<br>Distributed under the Faical Lami – Custom Research License 2025: open for reading/citation and non-commercial scientific testing; any commercial or applied use requires collaboration and sponsorship with the author.</p> <p> </p> <p> </p> <p>“Superposition becomes operational when timed: the visibility is the coherence fraction of phase-preserved frames within the observation window — V = γ.”</p> <p> </p> <p>Operational testing guide available: [L-Framework Experimental Design Guide v1.0</p> <p>https://doi.org/10.5281/zenodo.17172069</p> |
| format | Recurso digital |
| id | zenodo_https___doi_org_10_5281_zenodo_17137808 |
| institution | Zenodo |
| language | eng |
| publishDate | 2025 |
| publisher | Zenodo |
| record_format | zenodo |
| spellingShingle | Superposition framework v1.0. A time-framed operational account of quantum superposition Faical, Lami Planck time, superposition, coherence, time gating, observation window, visibility, distinguishability, photon clock, quantum foundations, interference, decoherence, operational framework, time-resolved measurement <p>Version note<br>This report extends the Time Frameworks (TF1.0, TF2.0) with an operational account of quantum superposition. Whereas TF1.0/TF2.0 formalize time as sequences of Planck ticks and calibrate particle-as-clock thinking, the present framework applies that timing logic directly to superposition across platforms.</p> <p>What this work does<br>We model superposition as a time-resolved process: within a detector observation window Δt_obs, only a fraction of phase-preserved frames contributes coherently. Let γ(Δt_obs) denote that coherence fraction. For generic two-path/two-state scenarios, the measurable signal decomposes into an incoherent baseline plus a γ-weighted interference term, so fringe visibility obeys the operational law V = γ. As Δt_obs shortens (or effective which-path information increases), γ decreases monotonically and V falls accordingly.</p> <p>Predictions & checks<br>– Time gating reduces V in a controlled, monotonic way; long coherent dwell times increase V.<br>– The description is consistent with V² + D² ≤ 1, with D the distinguishability.<br>– The same timing control applies beyond photons (e.g., atom/matter-wave interferometry) by using the system’s natural frequency as a clock and normalizing to the Planck-tick scale.</p> <p>Relation to other frameworks<br>This Superposition framework is an operational supplement to Time framework 1.0 and Time framework 2.0, and it complements the Photon framework v1.0 (double-slit specialization). Together they provide a unified, time-framed route from discrete ticks to testable visibility laws.</p> <p>License<br>Distributed under the Faical Lami – Custom Research License 2025: open for reading/citation and non-commercial scientific testing; any commercial or applied use requires collaboration and sponsorship with the author.</p> <p> </p> <p> </p> <p>“Superposition becomes operational when timed: the visibility is the coherence fraction of phase-preserved frames within the observation window — V = γ.”</p> <p> </p> <p>Operational testing guide available: [L-Framework Experimental Design Guide v1.0</p> <p>https://doi.org/10.5281/zenodo.17172069</p> |
| title | Superposition framework v1.0. A time-framed operational account of quantum superposition |
| topic | Planck time, superposition, coherence, time gating, observation window, visibility, distinguishability, photon clock, quantum foundations, interference, decoherence, operational framework, time-resolved measurement |
| url | https://doi.org/10.5281/zenodo.17137808 |