Paper 45: Room-Temperature Superconductivity through Resonance Engineering of Spacetime Metamaterials

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Main Author: Biehl, Lienhard
Format: Recurso digital
Language:English
Published: Zenodo 2025
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author Biehl, Lienhard
author_facet Biehl, Lienhard
contents <p>This paper extends the Scale-Relative Time (SRT) framework for superconductivity from analysis of natural materials to the predictive design of artificial systems. Building on the preceding work (Paper #44), which predicted a resonance in Cu_<em>x</em>Bi_2Se_3 at <strong><em>x</em> ≈ 0.28</strong>, we first complete that analysis by calculating the resulting peak temperature to be <strong>19.4 K </strong>via an SRT scaling law (<strong><em>T_c</em> ∝ n⁴⸍³_e</strong>). Arguing that this represents a practical limit for natural crystals, we introduce a methodology of ”Resonance Engineering”. We propose a heterostructure of<strong> graphene</strong> on <strong>Strontium Titanate (SrTiO_3)</strong> as a spacetime metamaterial with engineered effective physical laws. To achieve a critical temperature of <strong>293 K (20°C)</strong>, the model requires an effective relative permittivity of <strong><em>ϵ_r,eff</em> ≈ 1510</strong>. This, in turn, dictates a precise resonance carrier density in the graphene layer of <strong><em>n</em>_<em>res</em> ≈ 1.75 × 10¹⁴ cm⁻²</strong>, a value achievable via standard gating. The SRT framework thus yields a concrete, falsifiable engineering protocol for the construction of a room-temperature superconductor.</p>
format Recurso digital
id zenodo_https___doi_org_10_5281_zenodo_16225059
institution Zenodo
language eng
publishDate 2025
publisher Zenodo
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spellingShingle Paper 45: Room-Temperature Superconductivity through Resonance Engineering of Spacetime Metamaterials
Biehl, Lienhard
Room-Temperature Superconductivity
Scale-Relativity
Metamaterials
Graphene
Strontium Titanate
Resonance Engineering
Heterostructures
Quantum Engineering
Foundations of Physics
Predictive Design
<p>This paper extends the Scale-Relative Time (SRT) framework for superconductivity from analysis of natural materials to the predictive design of artificial systems. Building on the preceding work (Paper #44), which predicted a resonance in Cu_<em>x</em>Bi_2Se_3 at <strong><em>x</em> ≈ 0.28</strong>, we first complete that analysis by calculating the resulting peak temperature to be <strong>19.4 K </strong>via an SRT scaling law (<strong><em>T_c</em> ∝ n⁴⸍³_e</strong>). Arguing that this represents a practical limit for natural crystals, we introduce a methodology of ”Resonance Engineering”. We propose a heterostructure of<strong> graphene</strong> on <strong>Strontium Titanate (SrTiO_3)</strong> as a spacetime metamaterial with engineered effective physical laws. To achieve a critical temperature of <strong>293 K (20°C)</strong>, the model requires an effective relative permittivity of <strong><em>ϵ_r,eff</em> ≈ 1510</strong>. This, in turn, dictates a precise resonance carrier density in the graphene layer of <strong><em>n</em>_<em>res</em> ≈ 1.75 × 10¹⁴ cm⁻²</strong>, a value achievable via standard gating. The SRT framework thus yields a concrete, falsifiable engineering protocol for the construction of a room-temperature superconductor.</p>
title Paper 45: Room-Temperature Superconductivity through Resonance Engineering of Spacetime Metamaterials
topic Room-Temperature Superconductivity
Scale-Relativity
Metamaterials
Graphene
Strontium Titanate
Resonance Engineering
Heterostructures
Quantum Engineering
Foundations of Physics
Predictive Design
url https://doi.org/10.5281/zenodo.16225059