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February 12, 20260 citationsOpen Access

A Deterministic Spectral Framework at the Planck Scale with Parameter-Free Cosmological Predictions

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QNQuoc Truong Nguyen

Key Points

  • This research aims to define a deterministic spectral framework for understanding Planck-scale physics and its cosmological implications.
  • Developed a self-adjoint operator with compact resolvent and Weyl-type eigenvalue growth.
  • Derived physical quantities from spectral invariants and fundamental constants without adjustable parameters.
  • Utilized closed-form trace and heat-kernel formulas to yield predictions.
  • Constrained low-energy drift effects through precision metrology.
  • Predicted exponential ultraviolet spectral suppression aligns with the smallness of the cosmological constant.
  • Calculated parameter-free heat-kernel coefficients inducing cosmological corrections.
  • Provided null bounds on low-energy drift effects that are directly verifiable.

Abstract

We develop a deterministic spectral framework for Planck-scale physics based on a self-adjoint operator with compact resolvent and Weyl-type eigenvalue growth. All physical quantities are derived exclusively from spectral invariants and fundamental constants (c, , G), without adjustable parameters or empirical fitting. Closed-form trace and heat-kernel formulas yield explicit predictions, including: exponential ultraviolet spectral suppression consistent with the observed smallness of the cosmological constant, parameter-free heat-kernel coefficients inducing cosmological corrections, null bounds on low-energy drift effects constrained by precision metrology. All observables are algebraic functions of spectral data, mathematically well-posed, and directly falsifiable. The framework provides a reproducible bridge between spectral geometry and cosmological-scale phenomena.

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Cite This Study

Quoc Truong Nguyen (2026) studied this question.

synapsesocial.com/papers/698d6d795be6419ac0d5264chttps://doi.org/10.5281/zenodo.18586697
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