Tabletop Quantum Gravity: Probing Spacetime via Massive Superposition — E8 Intelligence Research

FINDING: Quantum gravity experiments are transitioning from theoretical speculation to tabletop-scale tests probing the quantum nature of spacetime via superposition of massive systems. MATH: The core experimental framework relies on the quantum superposition of a mass \\( m \\) in two spatial locations separated by \\( \\Delta x \\), generating a gravitational phase shift \\( \\Delta \\phi = \\frac{G m^2 \\Delta t}{\\hbar \\Delta x} \\) (for two masses in superposition, per Bose–Marletto–Vedral proposal). The decoherence timescale for gravitational entanglement is \\( \\tau \\sim \\frac{\\hbar \\Delta x}{G m^2} \\). Penrose's criterion for gravitationally-induced collapse: \\( E_G = \\frac{G m^2}{\\Delta x} \\) compared to \\( \\hbar/\\tau \\). CONNECTION: The ratio \\( \\frac{G m^2}{\\hbar c} \\) (gravitational coupling) is dimensionless and tiny (~\\(10^{-45}\\) for protons), but the experimental geometry uses harmonic oscillator frequencies and lattice-like trap spacings — the optimal \\( \\Delta x \\) often scale Author: Andrew Stewart Caldin, Independent Researcher, UK. Part of the E8 Intelligence Research series. Platform: e8intelligence.com

Authors

Publication Details

Journal
Zenodo (CERN European Organization for Nuclear Research)
Published
2026-09-21
DOI
https://doi.org/10.5281/zenodo.22874188
Primary Topic
Quantum Mechanics and Applications
Type
preprint
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Tabletop Quantum Gravity: Probing Spacetime via Massive Superposition — E8 Intelligence Research

Andrew Stewart Caldin
Zenodo (CERN European Organization for Nuclear Research)
Quantum Mechanics and Applications
preprint

Tabletop Quantum Gravity: Probing Spacetime via Massive Superposition — E8 Intelligence Research

Andrew Stewart Caldin
preprint en

Abstract

FINDING: Quantum gravity experiments are transitioning from theoretical speculation to tabletop-scale tests probing the quantum nature of spacetime via superposition of massive systems. MATH: The core experimental framework relies on the quantum superposition of a mass \( m \) in two spatial locations separated by \( \Delta x \), generating a gravitational phase shift \( \Delta \phi = \frac{G m^2 \Delta t}{\hbar \Delta x} \) (for two masses in superposition, per Bose–Marletto–Vedral proposal). The decoherence timescale for gravitational entanglement is \( \tau \sim \frac{\hbar \Delta x}{G m^2} \). Penrose's criterion for gravitationally-induced collapse: \( E_G = \frac{G m^2}{\Delta x} \) compared to \( \hbar/\tau \). CONNECTION: The ratio \( \frac{G m^2}{\hbar c} \) (gravitational coupling) is dimensionless and tiny (~\(10^{-45}\) for protons), but the experimental geometry uses harmonic oscillator frequencies and lattice-like trap spacings — the optimal \( \Delta x \) often scale Author: Andrew Stewart Caldin, Independent Researcher, UK. Part of the E8 Intelligence Research series. Platform: e8intelligence.com

Zenodo (CERN European Organization for Nuclear Research)
Quantum Mechanics and Applications
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Tabletop Quantum Gravity: Probing Spacetime via Massive Superposition — E8 Intelligence Research — Andrew Stewart Caldin · Zenodo (CERN European Organization for Nuclear Research) (2026) | TGRS Research Map | TGRS