Room-Temperature Superconductivity in Hydrides from the Scalar Temporal Field: Retarded τ-Exchange, Two-Boson Tc, and Design Rules

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Autor principal: Howe, Cale Scott
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Publicado: Zenodo 2025
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author Howe, Cale Scott
author_facet Howe, Cale Scott
contents <p>This work applies the Scalar Temporal Field Ontology (STFO) to dense hydrides under pressure, showing that fluctuations of the scalar temporal field τ(x) produce a retarded attractive pairing mechanism that complements conventional electron–phonon interactions.</p> <p>Integrating out τ-fluctuations generates an effective attraction<br>Vτ(q, ω) = −γτ² ω² / (ω² + vτ² q² + mτ²),<br>with pairing cutoff ωτ ≈ mτ (meV scale). When added to strong hydride phonon coupling, this yields a two-boson Tc formula:</p> <p>Tc ≈ (f1 f2 / 1.2) * sqrt(ωlog(ph) ωlog(τ)) *<br>       exp[ −(1 + λph + λτ) / (λph + λτ − μ*) ].</p> <p>Even modest λτ (≈0.2–0.6) boosts Tc into the 200–350 K regime for realistic hydride parameters. Temporal noise suppresses bandwidth (W_eff↓ → N(0)↑), enhancing pairing but reducing stiffness, producing a natural Tc dome.</p> <p>Key predictions:<br>• Dual bosonic features: phonon + meV τ modes<br>• Pressure-dependent isotope exponent α(P) < 1/2<br>• Possible τ-aligned pairing anisotropy<br>• Tc(P) deviates from single-boson Allen–Dynes fits</p> <p>Candidate systems: LaH₁₀, H₃S, CaH₆, YH₉, La–Y hydrides.</p> <p>This mechanism provides a unified pathway toward room-temperature superconductivity within STFO, with concrete experimental signatures for validation.</p>
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id zenodo_https___doi_org_10_5281_zenodo_17576229
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publishDate 2025
publisher Zenodo
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spellingShingle Room-Temperature Superconductivity in Hydrides from the Scalar Temporal Field: Retarded τ-Exchange, Two-Boson Tc, and Design Rules
Howe, Cale Scott
Scalar Temporal Field
STFO
superconductivity
hydrides
LaH10
H3S
CaH6
YH9
high-Tc
room-temperature superconductivity
two-boson pairing
tau exchange
disformal coupling
Eliashberg
bandwidth collapse
isotope exponent
pressure-tuning
<p>This work applies the Scalar Temporal Field Ontology (STFO) to dense hydrides under pressure, showing that fluctuations of the scalar temporal field τ(x) produce a retarded attractive pairing mechanism that complements conventional electron–phonon interactions.</p> <p>Integrating out τ-fluctuations generates an effective attraction<br>Vτ(q, ω) = −γτ² ω² / (ω² + vτ² q² + mτ²),<br>with pairing cutoff ωτ ≈ mτ (meV scale). When added to strong hydride phonon coupling, this yields a two-boson Tc formula:</p> <p>Tc ≈ (f1 f2 / 1.2) * sqrt(ωlog(ph) ωlog(τ)) *<br>       exp[ −(1 + λph + λτ) / (λph + λτ − μ*) ].</p> <p>Even modest λτ (≈0.2–0.6) boosts Tc into the 200–350 K regime for realistic hydride parameters. Temporal noise suppresses bandwidth (W_eff↓ → N(0)↑), enhancing pairing but reducing stiffness, producing a natural Tc dome.</p> <p>Key predictions:<br>• Dual bosonic features: phonon + meV τ modes<br>• Pressure-dependent isotope exponent α(P) < 1/2<br>• Possible τ-aligned pairing anisotropy<br>• Tc(P) deviates from single-boson Allen–Dynes fits</p> <p>Candidate systems: LaH₁₀, H₃S, CaH₆, YH₉, La–Y hydrides.</p> <p>This mechanism provides a unified pathway toward room-temperature superconductivity within STFO, with concrete experimental signatures for validation.</p>
title Room-Temperature Superconductivity in Hydrides from the Scalar Temporal Field: Retarded τ-Exchange, Two-Boson Tc, and Design Rules
topic Scalar Temporal Field
STFO
superconductivity
hydrides
LaH10
H3S
CaH6
YH9
high-Tc
room-temperature superconductivity
two-boson pairing
tau exchange
disformal coupling
Eliashberg
bandwidth collapse
isotope exponent
pressure-tuning
url https://doi.org/10.5281/zenodo.17576229