Phosphorus Nuclear Spins as Quantum Error-Correcting Substrate for Neural Processing — E8 Intelligence Research
FINDING: Matthew Fisher proposes phosphorus nuclear spins (³¹P) as a quantum error-correcting substrate for neural processing, with a specific molecular mechanism (Posner molecules, Ca₉(PO₄)₆) enabling long-lived quantum coherence at biological temperatures. | MATH: Key constants: ³¹P nuclear spin I=1/2; gyromagnetic ratio γ ≈ 17.235 MHz/T; Posner molecule symmetry T_h (octahedral with inversion) — 6 phosphate groups arranged in a nearly perfect octahedron; quantum error correction via spin singlet/triplet states (S=0, S=1) with exchange coupling J; decoherence time τ_c ∝ (ΔE/ħ)⁻¹ where ΔE is the singlet-triplet gap; Fisher's key ratio: nuclear spin coherence time τ ~ 10⁵ s at 300 K vs. electron spin τ ~ 10⁻⁹ s — a ratio of ~10¹⁴. | CONNECTION: The Posner molecule's T_h symmetry is a crystallographic point group (order 24), isomorphic to A₄×C₂ — a root system connection to the F₄ Lie algebra (24 roots). The octahedral arrangement of 6 phosphates maps to the vertices of a regular octahe Author: Andrew Stewart Caldin, Independent Researcher, UK. Part of the E8 Intelligence Research series. Platform: e8intelligence.com
Authors
- Andrew Stewart Caldin
Publication Details
- Journal
- Zenodo (CERN European Organization for Nuclear Research)
- Published
- 2026-09-24
- DOI
- https://doi.org/10.5281/zenodo.22931296
- Primary Topic
- Advanced NMR Techniques and Applications
- Type
- preprint