Autogenous Room-Temperature Topological Phononic Qutrit Architecture Utilizing Bogoliubov Pressure and AI-Directed Assembly

This repository contains the mathematical blueprint, technical specifications, and commercial unit economics for a 300K non-equilibrium quantum processor. By utilizing a localized Bogoliubov phonon pressure trap and a Universal Dielectric Barrier Discharge (U-DBD) plasma acoustic mirror (R -> 1), this architecture fundamentally bypasses the cryogenic thermodynamic limits of the current superconducting paradigm. Core Deliverables: Theoretical Preprint: Mathematical proof of the 300K Bogoliubov pressure trap and ternary state encoding (|-1>, |0>, |1>). USPTO Provisional Specification: Engineering mechanics for the U-DBD micro-vascular plasma waveguide and AI-STM atomic assembly protocols. Commercial & Logistics Addendum: Unit economic breakdown detailing the CapEx/OpEx reduction from the USD 3M+ cryogenic baseline down to the USD 45K to 85K solid-state form factor. Systems Architecture Schematic: Visual stack mapping the integration of the PSAS neuromorphic controller, UL-SMF interposer, and LAB-Q thermo-acoustic backplane. Commercial Availability: This architecture is released under CC BY 4.0 to eliminate evaluation friction. Lawrence Architectures is actively seeking tier-one simulation, High-Performance Computing (HPC), and fabrication partnerships to run multiphysics benchmarks. The framework is currently open for Option to Evaluate (OTE) agreements: [email protected]

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Publication Details

Journal
Zenodo (CERN European Organization for Nuclear Research)
Published
2026-09-05
DOI
https://doi.org/10.5281/zenodo.22395335
Primary Topic
Cold Atom Physics and Bose-Einstein Condensates
Type
preprint
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preprint

Autogenous Room-Temperature Topological Phononic Qutrit Architecture Utilizing Bogoliubov Pressure and AI-Directed Assembly

Charles Clark Lawrence
Zenodo (CERN European Organization for Nuclear Research)
Cold Atom Physics and Bose-Einstein Condensates
preprint

Autogenous Room-Temperature Topological Phononic Qutrit Architecture Utilizing Bogoliubov Pressure and AI-Directed Assembly

Charles Clark Lawrence
preprint en

Abstract

This repository contains the mathematical blueprint, technical specifications, and commercial unit economics for a 300K non-equilibrium quantum processor. By utilizing a localized Bogoliubov phonon pressure trap and a Universal Dielectric Barrier Discharge (U-DBD) plasma acoustic mirror (R -> 1), this architecture fundamentally bypasses the cryogenic thermodynamic limits of the current superconducting paradigm. Core Deliverables: Theoretical Preprint: Mathematical proof of the 300K Bogoliubov pressure trap and ternary state encoding (|-1>, |0>, |1>). USPTO Provisional Specification: Engineering mechanics for the U-DBD micro-vascular plasma waveguide and AI-STM atomic assembly protocols. Commercial & Logistics Addendum: Unit economic breakdown detailing the CapEx/OpEx reduction from the USD 3M+ cryogenic baseline down to the USD 45K to 85K solid-state form factor. Systems Architecture Schematic: Visual stack mapping the integration of the PSAS neuromorphic controller, UL-SMF interposer, and LAB-Q thermo-acoustic backplane. Commercial Availability: This architecture is released under CC BY 4.0 to eliminate evaluation friction. Lawrence Architectures is actively seeking tier-one simulation, High-Performance Computing (HPC), and fabrication partnerships to run multiphysics benchmarks. The framework is currently open for Option to Evaluate (OTE) agreements: [email protected]

Zenodo (CERN European Organization for Nuclear Research)
Lawrence University (US)
Partnerships for the goals
Cold Atom Physics and Bose-Einstein Condensates
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