G3 OR 987 Retro-Industrial Scalability: Repurposing Legacy Optical Disc Replication Infrastructure for Mass Production of Room-Temperature Topological Quantum Processors

Following the recent global release of the foundational G3 OR 987 Enclosed Mechanical Quantum Computing framework, this treatise establishes the blueprint for the immediate, high-volume, and low-cost mass production of topological quantum time crystals. We demonstrate that the specialized hardware constraints required to sustain room-temperature quantum localization can be mapped onto standard optical disc replication infrastructures from the late 1980s and 1990s. By eliminating the standard spiral tracking grooves (Track Pitch) and audio/video modulation tables, we configure the legacy mastering and injection molding machinery to produce a perfectly smooth polycarbonate plane embedded with a subtractive 987-node aperiodic Vogel spiral of micro-cavities. Using classic industrial replication systems—specifically Singulus Technologies vacuum metallizers, Netstal Synergy injection molding machines, and ODME mastering systems—we outline a manufacturing process that minimizes development and asset costs. The resulting field-free, room-temperature topological quantum die achieves a unit manufacturing cost of $0.37 USD. We provide complete ab initio numerical validations confirming that this adapted subtractive architecture sustains Many-Body Localization (MBL) and topological phase-locking identically to additive configurations.

Authors

Publication Details

Journal
Zenodo (CERN European Organization for Nuclear Research)
Published
2026-09-15
DOI
https://doi.org/10.5281/zenodo.22760053
Primary Topic
Topological Materials and Phenomena
Type
preprint
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preprint

G3 OR 987 Retro-Industrial Scalability: Repurposing Legacy Optical Disc Replication Infrastructure for Mass Production of Room-Temperature Topological Quantum Processors

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

G3 OR 987 Retro-Industrial Scalability: Repurposing Legacy Optical Disc Replication Infrastructure for Mass Production of Room-Temperature Topological Quantum Processors

Yaron Admon Hefetz
preprint en

Abstract

Following the recent global release of the foundational G3 OR 987 Enclosed Mechanical Quantum Computing framework, this treatise establishes the blueprint for the immediate, high-volume, and low-cost mass production of topological quantum time crystals. We demonstrate that the specialized hardware constraints required to sustain room-temperature quantum localization can be mapped onto standard optical disc replication infrastructures from the late 1980s and 1990s. By eliminating the standard spiral tracking grooves (Track Pitch) and audio/video modulation tables, we configure the legacy mastering and injection molding machinery to produce a perfectly smooth polycarbonate plane embedded with a subtractive 987-node aperiodic Vogel spiral of micro-cavities. Using classic industrial replication systems—specifically Singulus Technologies vacuum metallizers, Netstal Synergy injection molding machines, and ODME mastering systems—we outline a manufacturing process that minimizes development and asset costs. The resulting field-free, room-temperature topological quantum die achieves a unit manufacturing cost of $0.37 USD. We provide complete ab initio numerical validations confirming that this adapted subtractive architecture sustains Many-Body Localization (MBL) and topological phase-locking identically to additive configurations.

Zenodo (CERN European Organization for Nuclear Research)
Industry, innovation and infrastructure
Topological Materials and Phenomena
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G3 OR 987 Retro-Industrial Scalability: Repurposing Legacy Optical Disc Replication Infrastructure for Mass Production of Room-Temperature Topological Quantum Processors — Yaron Admon Hefetz · Zenodo (CERN European Organization for Nuclear Research) (2026) | TGRS Research Map | TGRS