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April 27, 20260 citationsOpen Access

Orig-Final N-FIELD Phenomenological Vacuum Energy Regularization for Nanoscale Quantum Experiments

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WCWilliam T. Clark

Key Points

  • The aim is to develop a framework for vacuum energy regularization to tackle ultraviolet divergences in quantum field theory.
  • Introduced a smooth multiplicative ultraviolet regulator based on a functional form constrained by regulator structure.
  • Derived vacuum energy density with mathematical formulations.
  • Predicted Casimir force deviations and Bell test correlations under specific conditions.
  • Achieved a finite vacuum energy density of ρvac=ℏc/(12√3π)H−2.
  • Predicted power-law corrections for Casimir force deviations at sub-10 nm separations.
  • Expected Bell test correlations influenced by detector inefficiencies with S=2√2η².

Abstract

The Author presents a vacuum energy regularization framework using a smooth multiplicative UV regulator with methods to address ultraviolet divergences in quantum field theory. This work introduces a previously undisclosed functional form Neff (T, E) =k/ (T/T0) m+ (E/EP) nN₄₅₅ (T, E) = k/ (T/T₀) ᵐ + (E/EP) ⁿ (T, E) =k/ (T/T0) m+ (E/EP) n where parameters (k, m, nk, m, nk, m, n) are mathematically constrained by the regulator structure rather than freely fitted. The framework yields a finite vacuum energy density ρvac=ℏc123 πH−2ₕ₀₂ = c123\, H^-2ρvac=123πℏcH−2 and makes concrete predictions for: Casimir force deviations at sub-10 nm separations (power-law corrections) Bell test correlations via detector inefficiencies (S=22 η2S = 22\, ²S=22η2) All results are derived from standard real-analysis, respect quantum-mechanical bounds, and make no claims of solving the cosmological constant problem or introducing new physics.

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Cite This Study

William T. Clark (2026) studied this question.

synapsesocial.com/papers/69eefde9fede9185760d4be4https://doi.org/10.5281/zenodo.19751670
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