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March 29, 20260 citationsOpen Access

Nous: A Proposed Extension of the Standard Model — Towards a Field Theory of Intentional Information

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RSRivis Stefano

Key Points

  • The framework aims to extend the Standard Model Lagrangian by introducing the Nous field and addressing unresolved physics questions.
  • Proposed the Nous field as a new term in the Standard Model Lagrangian.
  • Discussed extensions of existing metrics and thermodynamic concepts.
  • Identified experimental anomalies and preliminary constraints on field parameters.
  • Introduced a resonance mass of 42 keV for the Nous field.
  • Identified a coherence length of 4.7 pm.
  • Established a link between the Nous field and the Riemann zeta function.

Abstract

Description: This preprint presents a theoretical framework proposing an extension of the Standard Model Lagrangian through the addition of a new term — the Nous field W_ () — defined as a Lorentz covariant vector field acting on the boundary of a quantum volume, weighted by the gradient of Von Neumann entropy. The framework addresses three open questions: the arrow of order against thermodynamic entropy, the nature of dark matter, and the origin of spontaneous symmetry breaking. Extensions of the Schwarzschild metric, Bekenstein–Hawking entropy, and Einstein's field equations are proposed. Six experimental anomalies are discussed as candidate signatures of the field, including the muon g-2 deviation, the Hubble tension, and magic-angle graphene superconductivity. A resonance mass mW = 42 keV and coherence length = 4. 7 pm are identified as preliminary experimental constraints. A structural connection with the Riemann zeta function is established: the ground state of the Nous field corresponds to the critical line = 1/2, linking this framework to the companion preprint on the Riemann Hypothesis (doi: 10. 5281/zenodo. 19230304). This is a theoretical proposal open to collaboration, critique, and formal development. Type: PreprintLicense: CC BY 4. 0Keywords: Nous field, fifth force, quantum information, Standard Model extension, dark matter, Von Neumann entropy, Riemann zeta function, magic-angle graphene

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Cite This Study

Rivis Stefano (2026) studied this question.

synapsesocial.com/papers/69c8c2d1de0f0f753b39d3adhttps://doi.org/10.5281/zenodo.19247010
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