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March 30, 20260 citationsOpen Access

Geometric Capacitance and Room Temperature Superconductivity in Boron Doped Graphene Lattices

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XTXai Avalon Tourney

Key Points

  • This research aims to establish a relationship between material science and room-temperature superconductivity through novel geometric modeling.
  • Developed a mechanical derivation connecting vacuum geometry with superconductivity.
  • Modeled vacuum as a discrete rhombic dodecahedral lattice using Unified Fractal Theory.
  • Investigated the effects of boron doping on the hexagonal lattice structure of graphene.
  • Identified a critical temperature exceeding 300 K for room-temperature superconductivity.
  • Showed that boron doping allows for stable electron propagation in graphene.
  • Demonstrated a structural link between the vacuum signature and superconducting properties.

Abstract

This paper provides a novel mechanical derivation for room-temperature superconductivity (RTS) by establishing a structural link between material science and foundational vacuum geometry. Using the Unified Fractal Theory, the author models the vacuum as a discrete rhombic dodecahedral lattice governed by the mechanical torsion limit (tau = 4/pi). The research demonstrates that while the 2D hexagonal lattice of graphene serves as a planar projection of this substrate, it remains subject to terrestrial atmospheric and gravitational compression (delta approximately 0. 978), leading to resistive decoherence. The core of this work identifies the Boron Knot, a localized torsional adjustment achieved through site-selective boron doping (Z=5) —as a mechanism to nullify terrestrial compression and restore invariant vacuum resonance. This anchor allows for stable, phase-locked electron propagation through 0. 5-degree energy filaments at the n=24 lattice generation. The model predicts a critical temperature (Tc) exceeding 300 K and identifies a discrete lattice resonance harmonic derived from the 1. 78 x 10¹9 Hz vacuum signature. This work offers a scalable blueprint for engineering post-resistance infrastructure by mimicking the inherent geometric equilibrium of the vacuum.

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Cite This Study

Xai Avalon Tourney (2026) studied this question.

synapsesocial.com/papers/69c9c5a4f8fdd13afe0bdab6https://doi.org/10.5281/zenodo.19275665
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Also Consider

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

  1. 1Geometric Capacitance and Room Temperature Superconductivity in Boron Doped Graphene Lattices2026
  2. 2The TELOS Architecture: Theoretical Prediction of Intrinsic Near-Room-Temperature Superconductivity (Tc ≈ 297.3 K) in hBN-Encapsulated, Uniaxially Strained Magic-Angle Trilayer Graphene2026
  3. 3Geometric Design of Room-Temperature Superconductivity: The $26^n$ Hierarchy and the 1.1° Magic Angle (k-Foam Theory)2026
  4. 4The TELOS Architecture: Theoretical Prediction of Bounded 167 K – 316 K Superconductivity in hBN-Encapsulated, Uniaxially Strained Magic-Angle Trilayer Graphene via Proximity Effect2026
  5. 5Theoretical Prediction of Bounded 167 K – 316 K Superconductivity in hBN-Encapsulated, Uniaxially Strained Magic-Angle Trilayer Graphene via Proximity Effect2026