A First-Principles Inter-Site Field Theory of 1/f Noise: Microscopic Foundations, Analytical Hooge Unification, and Operando Differential Noise Spectroscopy

Low-frequency excess fluctuation (1/f or flicker noise) in condensed-matter systems has historically been interpreted through an empirical dichotomy: discrete trap-assisted number fluctuations (Delta N) versus bulk lattice mobility fluctuations (Delta mu). Both paradigms treat crystalline and disordered solids as rigid networks hosting isolated, non-interacting defect nodes. Here, we formulate a first-principles classical field theory that establishes the dynamical origin of 1/f noise within the inter-site spatial continuum between lattice nodes. Under the vector Central Limit Theorem (CLT), the microscopic Coulombic, dipolar, and phononic force superposition across multi-body lattice coordinates converges rigorously to a Gaussian distribution, deriving the Gaussian Density of States (GDOS) without phenomenological heuristics. By evaluating the spatial covariance tensor across finite reaction coordinates, the energetic disorder width sigma_E is coupled analytically to crystallographic correlation lengths xi, isolating coherent (sigma_E proportional to a) and diffusive averaging (sigma_E proportional to xi) scaling regimes. Under operando DC bias, convolving the GDOS with the spatial gradient of the de-aligned electron quasi-Fermi level yields an exact closed-form Error Function expression for the macroscopic Hooge parameter gamma_HV, resolving the near-equilibrium Ohmic plateau and high-field geometric saturation. Differentiating this landscape yields Differential Noise Spectroscopy (dgamma_H/dV), uncovering a universal collective de-pinning resonance at qV* = Eeff - sigma_E that provides a well-conditioned inverse problem for extracting microscopic disorder and barrier parameters. At cryogenic temperatures (k_B T < sigma_E), path action minimization reveals fractal current constriction, explaining anomalous spectral index shifts (alpha_H > 1). Finally, dynamically driven non-equilibrium Master equations link 1/f noise directly to broadband dielectric loss (tan delta) via the Fluctuation-Dissipation Theorem.

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Publication Details

Journal
Zenodo (CERN European Organization for Nuclear Research)
Published
2026-09-24
DOI
https://doi.org/10.5281/zenodo.22942255
Primary Topic
Machine Learning in Materials Science
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article
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A First-Principles Inter-Site Field Theory of 1/f Noise: Microscopic Foundations, Analytical Hooge Unification, and Operando Differential Noise Spectroscopy

James Glenn-Anderson
Zenodo (CERN European Organization for Nuclear Research)
Machine Learning in Materials Science
article

A First-Principles Inter-Site Field Theory of 1/f Noise: Microscopic Foundations, Analytical Hooge Unification, and Operando Differential Noise Spectroscopy

James Glenn-Anderson
article en

Abstract

Low-frequency excess fluctuation (1/f or flicker noise) in condensed-matter systems has historically been interpreted through an empirical dichotomy: discrete trap-assisted number fluctuations (Delta N) versus bulk lattice mobility fluctuations (Delta mu). Both paradigms treat crystalline and disordered solids as rigid networks hosting isolated, non-interacting defect nodes. Here, we formulate a first-principles classical field theory that establishes the dynamical origin of 1/f noise within the inter-site spatial continuum between lattice nodes. Under the vector Central Limit Theorem (CLT), the microscopic Coulombic, dipolar, and phononic force superposition across multi-body lattice coordinates converges rigorously to a Gaussian distribution, deriving the Gaussian Density of States (GDOS) without phenomenological heuristics. By evaluating the spatial covariance tensor across finite reaction coordinates, the energetic disorder width sigma_E is coupled analytically to crystallographic correlation lengths xi, isolating coherent (sigma_E proportional to a) and diffusive averaging (sigma_E proportional to xi) scaling regimes. Under operando DC bias, convolving the GDOS with the spatial gradient of the de-aligned electron quasi-Fermi level yields an exact closed-form Error Function expression for the macroscopic Hooge parameter gamma_HV, resolving the near-equilibrium Ohmic plateau and high-field geometric saturation. Differentiating this landscape yields Differential Noise Spectroscopy (dgamma_H/dV), uncovering a universal collective de-pinning resonance at qV* = Eeff - sigma_E that provides a well-conditioned inverse problem for extracting microscopic disorder and barrier parameters. At cryogenic temperatures (k_B T < sigma_E), path action minimization reveals fractal current constriction, explaining anomalous spectral index shifts (alpha_H > 1). Finally, dynamically driven non-equilibrium Master equations link 1/f noise directly to broadband dielectric loss (tan delta) via the Fluctuation-Dissipation Theorem.

Zenodo (CERN European Organization for Nuclear Research)
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A First-Principles Inter-Site Field Theory of 1/f Noise: Microscopic Foundations, Analytical Hooge Unification, and Operando Differential Noise Spectroscopy — James Glenn-Anderson · Zenodo (CERN European Organization for Nuclear Research) (2026) | TGRS Research Map | TGRS