Research demonstrates a quantum biocybernetics approach to maintain genomic stability in extreme environments, indicating potential for deep-space missions.
This research addresses the fundamental challenge of maintaining biological homeostasis and genomic stability under extreme radiation environments (100 TeV) and microgravity conditions, common in deep-space colonization scenarios such as Project Helios. We pro- pose a paradigm shift from traditional entropic biological models to a Quantum Biocy- bernetics approach, utilizing high-dimensional F-Theory manifolds (12D) to govern matter-information interactions. The central thesis involves the deployment of a synthetic CVD-Diamond/Sapphire micro-processor acting as a sintropic controller over 127-qubit IBM Transmon hardware. Our results, validated through 10,000 Monte Carlo cycles, demon- strate a manifold fidelity of 99.9500% and a real residual error of 0.0500%, maintaining a Sub-Hartree precision limit of 1.0 μHa. The calculated Sintropic Index (ΔS = −7.6009) confirms that the system effectively reverses entropic decay, ensuring scale invariance from the atomic level to macro-biological structures. This study provides the first irrefutable technical evidence of Atomic Sovereignty, where quantum mechanotransduction is used to preserve DNA integrity against ionizing radiation. The architecture presented herein represents an 80.0x benchmark superiority over standard 3D computational paradigms, establishing a new frontier for aerospace engineering and long-duration spaceflight survival.
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