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August 26, 20250 citationsOpen Access

A Geometric Origin of the Elementary Particle Mass Spectrum

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RARyuku Akahoshi

Key Points

  • The mass hierarchy of elementary particles is organized by a geometric principle, demonstrating significant precision without fine-tuning.
  • A single parameter γ effectively categorizes particle masses across various types, including leptons and bosons, with a p-value of 0.012 supporting the model's fit.
  • Derived from a vacuum energy minimization model, this concept includes factors such as spontaneous symmetry breaking to explain mass distributions.
  • The model's predictions extend to the hadron sector, indicating a broader geometric foundation for understanding particle mass.

Abstract

Abstract This study proposes that the mass hierarchy of elementary particles is governed by a geometric principle of two-dimensional quantization. We show that a single, theoretically-derived parameter γ organizes the masses of leptons and heavy bosons (µ, τ, W, Z, H) on a quadratic lattice \ (\: m/m₄=n₁^2+\: n₂^2\) with high precision and no fine-tuning. The theoretical value of γ is derived from a vacuum energy minimization model, where a spontaneous symmetry breaking locks the vacuum’s vibrational modes into a narrow angular wedge. This predicted γ incorporates both a geometric term derived from the wedge angle and a small, physically-motivated tension ratio \ (\: (Aₘ/Aₗ) \). Statistical validation against a null hypothesis confirms the significance of the fit (p ≈ 0. 012), and the uniqueness of the integer-pair assignments is ensured by a robust stability margin. The model’s applicability is further explored in the hadron sector, where its predictions, while less precise, remain qualitatively successful, suggesting a universal geometric foundation for mass.

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Cite This Study

Ryuku Akahoshi (2025) studied this question.

synapsesocial.com/papers/68af63e9ad7bf08b1eae482ehttps://doi.org/10.21203/rs.3.rs-7449122/v1
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