G3 OR 1597 Torus Quantum Computer Architecture: An Empirical Blueprint for Assembling a Room-Temperature, Self-Powered Topological Processor

This paper provides a transparent, empirical handbook for constructing a continuous-operation, room-temperature topological quantum computer. Bypassing the need for cryogenic cooling, the G3 OR 1597 Torus architecture leverages a Monolithic Trilayer Van der Waals Quantum Crystal comprising 1,597 deterministic anchors. By employing a Triple-Phyllotactic Network Interference (TPMI) geometry with a 22.5-degree global Moiré gradient, the system achieves a passive stability floor exceeding 75%. Utilizing spatial-spectral multiplexing and ambient RF energy harvesting, this architecture operates in standard laboratory environments, providing a blueprint for immediate manufacturing via high-volume photolithography or retro-industrial CNC paradigms.

Authors

Publication Details

Journal
Zenodo (CERN European Organization for Nuclear Research)
Published
2026-09-21
DOI
https://doi.org/10.5281/zenodo.22882620
Primary Topic
Topological Materials and Phenomena
Type
preprint
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G3 OR 1597 Torus Quantum Computer Architecture: An Empirical Blueprint for Assembling a Room-Temperature, Self-Powered Topological Processor

Yaron Admon Hefetz
Zenodo (CERN European Organization for Nuclear Research)
Topological Materials and Phenomena
preprint

G3 OR 1597 Torus Quantum Computer Architecture: An Empirical Blueprint for Assembling a Room-Temperature, Self-Powered Topological Processor

Yaron Admon Hefetz
preprint en

Abstract

This paper provides a transparent, empirical handbook for constructing a continuous-operation, room-temperature topological quantum computer. Bypassing the need for cryogenic cooling, the G3 OR 1597 Torus architecture leverages a Monolithic Trilayer Van der Waals Quantum Crystal comprising 1,597 deterministic anchors. By employing a Triple-Phyllotactic Network Interference (TPMI) geometry with a 22.5-degree global Moiré gradient, the system achieves a passive stability floor exceeding 75%. Utilizing spatial-spectral multiplexing and ambient RF energy harvesting, this architecture operates in standard laboratory environments, providing a blueprint for immediate manufacturing via high-volume photolithography or retro-industrial CNC paradigms.

Zenodo (CERN European Organization for Nuclear Research)
Affordable and clean energy
Topological Materials and Phenomena
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