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April 22, 20260 citationsOpen Access

The Fermion as a Möbius LC Circuit: Inductive Mass, Capacitive Charge, and the Fine Structure Constant as an Impedance Ratio

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ZYZheng Yan

Key Points

  • The research aims to present a novel interpretation of the fermion through an LC circuit model, linking fundamental constants with circuit theory.
  • Identified the fermion as a topological Möbius LC circuit.
  • Derived key relationships using impedance and resonance conditions.
  • Analyzed mass, charge, and stability through circuit parameters.
  • Established that the inertial mass corresponds to inductance within the circuit.
  • Derived the fine structure constant as a ratio between vacuum impedance and quantum resistance.
  • Demonstrated resonance conditions illustrating fermion stability and lifetime.

Abstract

Abstract This paper identifies the fermion (Möbius (n=3) standing wave) as a topological LC circuit. By separating the wave into an inductive inner layer and a capacitive outer layer, we derive the fine structure constant () as a fundamental impedance ratio. Key Findings Mass as Inductance: The inertial mass (m) is identified as the inductive impedance of the inner Möbius layer. Newton’s second law is shown to be the frequency-domain equivalent of an inductor's response. m L The Fine Structure Constant: () is derived as the exact ratio between the vacuum characteristic impedance ( (Z₀) ) and twice the von Klitzing quantum resistance ( (RK) ), arising from the (4) topology of the Möbius circuit. = Z₀2RK LC Resonance and Stability: The upper wave-particle threshold (E/f² = 4²) is shown to be the resonance condition of the fermion's LC circuit. ₀ = 1LC Quality Factor and Lifetime: The particle lifetime is determined by the circuit's quality factor, explaining the electron's stability through an ideal resonance. Q = 2 274 Conclusion This circuit-based model provides a classical intuitive framework for quantum electrodynamics, unifying mass, charge, and interaction strength through topological impedance matching.

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Cite This Study

Zheng Yan (2026) studied this question.

synapsesocial.com/papers/69e867136e0dea528ddeb688https://doi.org/10.5281/zenodo.19663749
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1The Fermion as a Möbius LC Circuit: Inductive Mass, Capacitive Charge, and the Fine Structure Constant as an Impedance Ratio2026
  2. 2The Topological Origin of Mass and Charge: Deriving Fermionic Properties from a Discrete Möbius Substrate2026
  3. 3The Fine Structure Constant from Möbius Topology: 1/α_ideal = 24π²/√3 (Paper II of III)2026
  4. 4Q Framework: Charge and the Fine Structure Constant2026
  5. 5Geometric Origin of the Fine-Structure Constant and Electron Mass: Hopf Fibration, Topological Density, and the α⁻¹⁸ Bridge between Cosmology and Quantum Mechanics2026