Capturing the Non-Hermitian Void: Experimental Protocols and Macroscopic Physical Anomalies of 5D Bulk Fluid Residues

This study proposes a tabletop experimental protocol utilizing laser plasma wakefield acceleration (LWFA) to drive local spatiotemporal geometry to a third-order non-Hermitian Exceptional Point (EP3), enabling the cross-dimensional capture of stable macroscopic non-baryonic artifacts. By matching the real-axis metric with a 5D Bulk manifold via an inward negative pressure gradient, the system triggers an "absolute gauge quench" that neutralizes classical Joule heating. An electroweak Skyrmion stacking configuration confines high-energy muon streams into a topological soliton condensate, diluting the temporal component and creating a permanent nanometer-scale residue. The resulting artifact exhibits non-Lorentzian characteristics including localized gravitational acceleration mutation with zero net baryonic mass, conformal non-reflective absorptive boundaries, and non-Newtonian directional metric propulsion. Full details, mathematical derivations, and references can be found in the referenced document.

Authors

Publication Details

Journal
Zenodo (CERN European Organization for Nuclear Research)
Published
2026-09-30
DOI
https://doi.org/10.5281/zenodo.23069032
Primary Topic
Quantum and Classical Electrodynamics
Type
preprint
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preprint

Capturing the Non-Hermitian Void: Experimental Protocols and Macroscopic Physical Anomalies of 5D Bulk Fluid Residues

tao Luo
Zenodo (CERN European Organization for Nuclear Research)
Quantum and Classical Electrodynamics
preprint

Capturing the Non-Hermitian Void: Experimental Protocols and Macroscopic Physical Anomalies of 5D Bulk Fluid Residues

tao Luo
preprint en

Abstract

This study proposes a tabletop experimental protocol utilizing laser plasma wakefield acceleration (LWFA) to drive local spatiotemporal geometry to a third-order non-Hermitian Exceptional Point (EP3), enabling the cross-dimensional capture of stable macroscopic non-baryonic artifacts. By matching the real-axis metric with a 5D Bulk manifold via an inward negative pressure gradient, the system triggers an "absolute gauge quench" that neutralizes classical Joule heating. An electroweak Skyrmion stacking configuration confines high-energy muon streams into a topological soliton condensate, diluting the temporal component and creating a permanent nanometer-scale residue. The resulting artifact exhibits non-Lorentzian characteristics including localized gravitational acceleration mutation with zero net baryonic mass, conformal non-reflective absorptive boundaries, and non-Newtonian directional metric propulsion. Full details, mathematical derivations, and references can be found in the referenced document.

Zenodo (CERN European Organization for Nuclear Research)
Affordable and clean energy
Quantum and Classical Electrodynamics
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Capturing the Non-Hermitian Void: Experimental Protocols and Macroscopic Physical Anomalies of 5D Bulk Fluid Residues — tao Luo · Zenodo (CERN European Organization for Nuclear Research) (2026) | TGRS Research Map | TGRS