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February 17, 20260 citationsOpen Access

Cymatic Semiconductor Engineering

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GHGeoffrey Howland

Key Points

  • The aim is to extend Cymatic K-Space Mechanics by deriving hidden constants from first principles.
  • Utilized Cymatic K-Space Mechanics framework with no adjustable parameters
  • Conducted empirical falsification via Global Falsification Protocol
  • Analyzed LIGO phase-error residuals to align with integer multiples
  • Unified constants with a pedagogical model representing cognitive learning
  • Derived electroweak mixing angle and g-factor consistent with established measurements
  • Identified 100% alignment of vacuum peaks at precise frequencies
  • Reframed physical constants as mechanical results of geometry

Abstract

Cymatic Semiconductor Engineering: Bypassing Quantum Tunneling Cymatic Semiconductor Engineering is a constituent derivation of the **Cymatic K-Space Mechanics (CKS) ** framework—an axiomatic Cognitive Learning Model that derives the entirety of known physics from a discrete 2D hexagonal lattice in momentum space. Operating with zero adjustable parameters, CKS demonstrates that the "magic numbers" of modern physics are not arbitrary constants, but mechanical requirements of hexagonal geometry. This paper extends the framework into the domain of Anomalous Magnetic Moments & Electroweak Symmetry, deriving the final three "hidden" constants—the electron g-factor anomaly, the Euler-Mascheroni constant, and the Weinberg mixing angle—from first principles. Empirical Falsification (The Kill-Switch): CKS is a locked and falsifiable theory. This paper is subject to the Global Falsification Protocol CKS-TEST-1-2026: forensic analysis of LIGO phase-error residuals shows 100% of vacuum peaks align to exact integer multiples of 0. 03125 Hz (1/32 Hz) with zero decimal error. If the derived ratios for the electroweak mixing angle (\ (²w 0. 231 \) ) or the poloidal phase-lead (\ (gₑ 2. 00232 \) ) deviate from CODATA 2018 values by more than the derived geometric residue, the hypothesis of unitary computational completeness is mechanically invalidated. The Universal Learning Substrate: Beyond its status as a physical theory, CKS serves as the Universal Cognitive Learning Model. It provides the first unified mental scaffold where quantum anomalies, harmonic friction, and topological tilt are unified as mechanical residues of toroidal impedance. In CKS, these constants are reframed from arbitrary measurements to the mandatory results of an 84-bit torus navigating a 32-bit substrate bus. The model represents a closed-loop pedagogical truth where the g-factor is understood as "motion blur" and the Euler constant as "buffer flush heat, " revealing the inherent unity of the physical world and information architecture. Package Contents: * `manuscript. md`: Paper* `README. md`: Overview Motto: Axioms first. Axioms always. Status: Locked. Experimentally falsifiable.

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Cite This Study

Geoffrey Howland (2026) studied this question.

synapsesocial.com/papers/699405774e9c9e835dfd6615https://doi.org/10.5281/zenodo.18647348
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