Theoretical Framework for a Topological Momentum Drive: Macroscopic Propulsion via Room-Temperature Magnon Bose-Einstein Condensation and Anyon Braiding

This paper presents a theoretical framework for a novel solid-state propulsion architecture, termed the Topological Momentum Drive, which transitions macroscopic kinetic energy transfer from classical Lorentz-force electromagnetism to topological quantum field theory. The proposed conceptual architecture utilizes an orthogonal parametric stator-rotor topology without a conventional magnetic hysteresis loop. The rotor is composed of a specialized composite matrix (piezoelectric PVDF doped with BaTiO3 nanoparticles and CoFe2O4 cobalt ferrite). By driving orthogonal bifilar windings with a 50 kHz quadrature signal, the system establishes a localized dielectric resonance. This electrical resonance generates chiral (vortical) phonons that transfer orbital angular momentum into the ferrite lattice. The framework hypothesizes a multi-stage quantum phase transition within the rotor: * Supersolid Phase: Chiral phonons twist the magnetic spin structure, forcing the emergence of a topologically protected Skyrmion lattice. * Room-Temperature Magnon BEC: Parametric pumping of the ferrite lattice saturates the magnon density, triggering a phase collapse into a room-temperature Bose-Einstein Condensate. The material achieves macroscopic spin superconductivity, effectively eliminating magnetic friction and thermal scattering. * Topological Order & Spin Superfluidity: Further spatial and phase-coupled excitation transitions the system into a topological string-net liquid state, characterized by long-range entanglement and the fractionalization of excitations into non-Abelian Anyons. In this ultimate state, momentum transfer across the stator-rotor air gap (maintained via 50 kHz squeeze-film acoustic levitation) is no longer governed by the exchange of magnetic fields, but by Anyon braiding. Spintronic phase-shifting at the stator level induces a topological invariant alteration in the global quantum network, forcing a synchronized macroscopic physical rotation of the rotor to satisfy quantum geometric constraints. Furthermore, emergent magnetic monopoles resulting from Berry curvature within the superfluid state inherently shield the system from classical Back-EMF. This theoretical model outlines a propulsion system with near-zero latency, absolute topological rigidity, and extreme thermodynamic efficiency, paving the way for testing macroscopic topological quantum hydrodynamics in solid-stat e engineering.

Authors

Publication Details

Journal
Zenodo (CERN European Organization for Nuclear Research)
Published
2026-09-24
DOI
https://doi.org/10.5281/zenodo.22934057
Primary Topic
Micro and Nano Robotics
Type
preprint
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preprint

Theoretical Framework for a Topological Momentum Drive: Macroscopic Propulsion via Room-Temperature Magnon Bose-Einstein Condensation and Anyon Braiding

Michal Mazgal
Zenodo (CERN European Organization for Nuclear Research)
Micro and Nano Robotics
preprint

Theoretical Framework for a Topological Momentum Drive: Macroscopic Propulsion via Room-Temperature Magnon Bose-Einstein Condensation and Anyon Braiding

Michal Mazgal
preprint en

Abstract

This paper presents a theoretical framework for a novel solid-state propulsion architecture, termed the Topological Momentum Drive, which transitions macroscopic kinetic energy transfer from classical Lorentz-force electromagnetism to topological quantum field theory. The proposed conceptual architecture utilizes an orthogonal parametric stator-rotor topology without a conventional magnetic hysteresis loop. The rotor is composed of a specialized composite matrix (piezoelectric PVDF doped with BaTiO3 nanoparticles and CoFe2O4 cobalt ferrite). By driving orthogonal bifilar windings with a 50 kHz quadrature signal, the system establishes a localized dielectric resonance. This electrical resonance generates chiral (vortical) phonons that transfer orbital angular momentum into the ferrite lattice. The framework hypothesizes a multi-stage quantum phase transition within the rotor: * Supersolid Phase: Chiral phonons twist the magnetic spin structure, forcing the emergence of a topologically protected Skyrmion lattice. * Room-Temperature Magnon BEC: Parametric pumping of the ferrite lattice saturates the magnon density, triggering a phase collapse into a room-temperature Bose-Einstein Condensate. The material achieves macroscopic spin superconductivity, effectively eliminating magnetic friction and thermal scattering. * Topological Order & Spin Superfluidity: Further spatial and phase-coupled excitation transitions the system into a topological string-net liquid state, characterized by long-range entanglement and the fractionalization of excitations into non-Abelian Anyons. In this ultimate state, momentum transfer across the stator-rotor air gap (maintained via 50 kHz squeeze-film acoustic levitation) is no longer governed by the exchange of magnetic fields, but by Anyon braiding. Spintronic phase-shifting at the stator level induces a topological invariant alteration in the global quantum network, forcing a synchronized macroscopic physical rotation of the rotor to satisfy quantum geometric constraints. Furthermore, emergent magnetic monopoles resulting from Berry curvature within the superfluid state inherently shield the system from classical Back-EMF. This theoretical model outlines a propulsion system with near-zero latency, absolute topological rigidity, and extreme thermodynamic efficiency, paving the way for testing macroscopic topological quantum hydrodynamics in solid-stat e engineering.

Zenodo (CERN European Organization for Nuclear Research)
Affordable and clean energy
Micro and Nano Robotics
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