Posner Molecule's Missing Symmetry Undermines Quantum Qubit Coherence — E8 Intelligence Research
FINDING: The Posner molecule (Ca₉(PO₄)₆) — proposed as a quantum biological information processor — is shown to lack the symmetric dynamical ensemble previously assumed, undermining its viability for long-lived nuclear spin singlet/triplet qubit coherence. | MATH: Posner molecule stoichiometry: Ca₉(PO₄)₆ → 9 Ca²⁺, 6 PO₄³⁻. Nuclear spin Hilbert space: ³¹P nuclei (I=1/2) — 6 phosphorus spins → 2⁶ = 64 total states; singlet subspace dimension = 5 (for 6 spin-1/2, total S=0 multiplicity = 5). Triplet subspace (S=1) multiplicity = 9. The paper (arXiv:2108.08822) demonstrates the dynamical ensemble is *not* symmetric under the A₃ Weyl group (tetrahedral root system, order 24) — the assumed permutation symmetry of the 6 phosphate groups is broken by the actual Ca₉ cage geometry. | CONNECTION: **CRITICAL GEOMETRIC LINK** — The A₃ Weyl group is the symmetry group of the regular tetrahedron (order 24, root system: ±eᵢ±eⱼ, i≠j, 12 roots). The Posner molecule's phosphate tetrahedra (PO₄³⁻) each ca 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
- 2026-10-05
- DOI
- https://doi.org/10.5281/zenodo.23152205
- Primary Topic
- Quantum Mechanics and Applications
- Type
- preprint