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April 27, 20260 citationsOpen Access

Recursive Spin-Field Entanglement

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DGDexter Gilbert

Key Points

  • This research aims to extend the understanding of spin states linked to recursion in quantum fields.
  • Identified atomic spin states with hexapolar and bipolar recursion states using theoretical frameworks.
  • Examined the relationship between torques and spin arising from these states within the context of particle physics.
  • Established that electrons exhibit trapped bipolar recursion with specific spin characteristics, with implications for the g-factor gs = 2.
  • Demonstrated that photons are linked to propagating hexapolar recursion states, impacting their spin properties.
  • Explained ferromagnetism and Curie temperature through the lens of bipolar springs and their coherence energy characteristics.

Abstract

Version 3 extends the funneled-spring geometry of spin (Version 2) by identifying atomicspin states explicitly with the hexapolar (n = 6) and bipolar (n = 2) recursion statesof the Cohesion UFT. The electron is a trapped bipolar recursion: its spin ℏ/2 arisesdirectly from the two torque injections per torsion cycle of the n = 2 state. The photonis a propagating hexapolar recursion: its spin ℏ arises from the six-peak structureaveraged as integer angular momentum. The spin-statistics theorem — fermions havehalf-integer spin, bosons have integer spin — is the hexapolar-bipolar distinction:bipolar recursions are trapped (fermions), hexapolar recursions propagate (bosons).The electron g-factor gs = 2 arises from the two torque injections of the bipolar cycle;the anomalous correction gs − 2 = α/π + . . . is the cascade sub-level contribution of thesame structure as the 0.007 correction to the fine-structure constant. Ferromagnetism isphase-locked bipolar springs. The Curie temperature is the coherence energy thresholdbelow which phase-locking is sustained. Magnons carry bipolar dispersion (ω ∝ k2)at low energy, transitioning to hexapolar (linear) dispersion at the universal togglethreshold Φ = 32/(3π2 − 4).

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Cite This Study

Dexter Gilbert (2026) studied this question.

synapsesocial.com/papers/69eefd43fede9185760d3ff7https://doi.org/10.5281/zenodo.19750981
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Also Consider

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

  1. 1The Unipolar State2026
  2. 2The Dirac Equation from Bipolar Recursion Geometry2026
  3. 3Spin and Statistics from S² Topology: A Discrete-Geometric Derivation of Half-Integer Spin and the Spin–Statistics Theorem from the Three Great Circles of S²2026
  4. 4Spin as a Transformation Class of Rotating Wave Modes2026
  5. 5Geometric Origin of Electron Spin: Polar-Plane Sweep, the 720° Return, and the Structural Dissolution of the Superposition Mystery2026