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June 8, 20260 citationsOpen Access

Spectral Quantum Gravity: A Scale-Invariant Spectral Substrate with Emergent Three-Dimensionality, the Dark-Energy Scale, and a Unimodular Emergent Spin-2 Sector

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KFKarol Frank

Key Points

  • The aim is to derive spatial dimensionality and vacuum-energy scale from a spectral substrate rather than assuming them.
  • Examined scale invariance as an output of the maximum-entropy principle.
  • Formulated properties like the dark-energy scale and gravitational aspects within a bulk-entanglement framework.
  • Developed a prediction for a correction to the Newtonian potential testable through experiments.
  • Identified the dark-energy scale as the geometric mean of critical cutoffs, with its location at the logarithmic midpoint.
  • Proved a Yukawa-type correction to Newtonian gravity at approximately 44 μm range.
  • Provided conditional resolutions for the cosmological constant problem and implications for emergent gravity.

Abstract

This work studies the spatial dimensionality and the vacuum-energy scale of a single complex field — a spectral substrate — treating both as quantities to be derived rather than inserted. From a single assumption, exact scale invariance (argued to be the output of a correctly applied maximum-entropy principle rather than an independent postulate), the construction obtains: a third spatial axis as an ultraviolet spectral-dimension property, constant across the scale-invariant window; the coherence/dark-energy scale as the geometric mean of the Planck and de Sitter cutoffs, lₛ = (ħG/c³Λ) ^ (1/4), the non-trivial content being its location at the logarithmic midpoint; and the exclusion of the catastrophic vacuum-energy functional by a scale-equivariance argument — a conditional resolution of the cosmological-constant problem. Reflection positivity of the free sector gives the Euclidean-to-Lorentzian signature flip. A separate, explicitly exploratory part examines the gravitational sector within the bulk-entanglement (Cao–Carroll) framework, where the substrate supplies as derived or measured properties several inputs that programme assumes, yielding a massless, ghost-free emergent spin-2 mode compatible with unimodular gravity. A falsifiable prediction follows: a Yukawa-type correction to the Newtonian potential at range λ ≈ 44 μm, fixed parameter-free by the dark-energy scale, with a bounded amplitude testable by short-range torsion-balance experiments. Results are tagged throughout as proved, computed, assumed, or open. The gravitational and matter sectors are of explicitly lower evidential grade than the dimensional and dark-energy results. The fermion mass hierarchy and the emergence of a non-abelian gauge structure are stated as open problems; the substrate explains that fermions are massive (soliton self-energy) but not the mass values, a limitation it shares with the Standard Model.

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Cite This Study

Karol Frank (2026) studied this question.

synapsesocial.com/papers/6a265cffad53cfb9357c63bfhttps://doi.org/10.5281/zenodo.20575238
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