The R2R Triad Stack v2.0: Active Resonance Entanglement Architecture

The original Roll-to-Roll (R2R) Triad Stack established a prime-form volumetric interconnect for bridging classical networks and cryogenic quantum hardware. By integrating recent experimental breakthroughs in resonance fluorescence within the detuned Heitler regime, this Version 2.0 architecture fundamentally shifts the ribbon from a passive hyperscale router to a solid-state, active multiphoton entanglement generator. The massive non-linearity of the epitaxial BaTiO₃ strata is repurposed as a structural geometrical notch filter to suppress the destructive coherent mean field, allowing the quantum fluctuation field—containing correlated three- and four-photon scattering bundles—to propagate from the WSe₂ layers unobstructed. Shielded by the Universal Dielectric Barrier Discharge (U-DBD) plasma acoustic boundary, which provides total internal reflection of ambient thermal noise via Bogoliubov phonon pressure gradients, this system enables the continuous, room-temperature (300K) synthesis and holographic broadcasting of energy-time entangled photon bundles. This provides a hardware-native bypass to millikelvin cryogenic infrastructure, satisfying the utility-scale economic thresholds required for hyperscale integration and DARPA QBI Stage C evaluation. Note: Core plasma modulation dynamics, detuning parameters, and waveguide geometries remain protected under pending USPTO Provisional Utility Specifications and are exclusively available to institutional partners under an executed Mutual Non-Disclosure Agreement (MNDA). For commercial licensing, acquisition inquiries, or Option to Evaluate (OTE) agreements regarding this architecture, please contact: [email protected]

Authors

Publication Details

Journal
Zenodo (CERN European Organization for Nuclear Research)
Published
2026-10-09
DOI
https://doi.org/10.5281/zenodo.23251384
Primary Topic
Quantum Information and Cryptography
Type
preprint
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preprint

The R2R Triad Stack v2.0: Active Resonance Entanglement Architecture

Charles Clark Lawrence
Zenodo (CERN European Organization for Nuclear Research)
Quantum Information and Cryptography
preprint

The R2R Triad Stack v2.0: Active Resonance Entanglement Architecture

Charles Clark Lawrence
preprint en

Abstract

The original Roll-to-Roll (R2R) Triad Stack established a prime-form volumetric interconnect for bridging classical networks and cryogenic quantum hardware. By integrating recent experimental breakthroughs in resonance fluorescence within the detuned Heitler regime, this Version 2.0 architecture fundamentally shifts the ribbon from a passive hyperscale router to a solid-state, active multiphoton entanglement generator. The massive non-linearity of the epitaxial BaTiO₃ strata is repurposed as a structural geometrical notch filter to suppress the destructive coherent mean field, allowing the quantum fluctuation field—containing correlated three- and four-photon scattering bundles—to propagate from the WSe₂ layers unobstructed. Shielded by the Universal Dielectric Barrier Discharge (U-DBD) plasma acoustic boundary, which provides total internal reflection of ambient thermal noise via Bogoliubov phonon pressure gradients, this system enables the continuous, room-temperature (300K) synthesis and holographic broadcasting of energy-time entangled photon bundles. This provides a hardware-native bypass to millikelvin cryogenic infrastructure, satisfying the utility-scale economic thresholds required for hyperscale integration and DARPA QBI Stage C evaluation. Note: Core plasma modulation dynamics, detuning parameters, and waveguide geometries remain protected under pending USPTO Provisional Utility Specifications and are exclusively available to institutional partners under an executed Mutual Non-Disclosure Agreement (MNDA). For commercial licensing, acquisition inquiries, or Option to Evaluate (OTE) agreements regarding this architecture, please contact: [email protected]

Zenodo (CERN European Organization for Nuclear Research)
Quantum Information and Cryptography
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