Photonic Projection of Atomic Structure and a Unified Theory of Space Compression Model
Description
Rough draft of the final paper refrencable make sure you cite me if you use my ideas or any version of them
I simplify the standard model by combining like terms and eliminating structures made of particles as elementary particles like quarks.
A new draft stage 1 through 8 cosmology plus TOE that simplifies the standard model and bridges QFT GR Via the small particle or smarticle based on directly observed empirical evidence .
This groundbreaking paper presents direct visual evidence of atomic and molecular structure through photonic projection under ambient conditions, challenging conventional models built on vacuum-based, indirect measurements. By leveraging a simple light-based technique, we reveal nested atomic shell patterns, molecular coherence, and variable polarity alignments that have never before been documented in this form.
The accompanying theory introduces a new foundational model of matter, where atoms form through layered compression of space into units called smarticles. This model explains charge emergence, nested bonding, electron shell formation, and even gravitational behavior from first principles. We also provide a mathematical framework unifying mass, charge, and spatial compression under a single equation.
The paper includes:
Over 70 atomic projection images from common substances (salt, sugar, borax, aluminum)
A formal critique of vacuum-based measurement biases
New definitions for zero-point energy and the structure of light
Correlations between observed atomic structure and dipole alignment
Novel insights into molecular nesting and chemical reactions
A complete reference list of over 140 supporting sources
This work invites the scientific community to re-examine core assumptions in atomic physics, quantum mechanics, and chemistry. It offers not only a paradigm-shifting model but also practical experimental methodology for replication by independent researchers.
Files
ppassct31.pdf
Files
(77.2 MB)
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Additional details
Related works
- Cites
- Preprint: 10.5281/zenodo.15216749 (DOI)
- Is supplemented by
- Dataset: 10.5281/zenodo.15253253 (DOI)