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April 17, 20260 citationsOpen Access

Research 21 "Structural Isomorphism Between Micro and Macro Scales Revealed in Black Holes and Neutron Stars"

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DJDEOKHO JEON

Key Points

  • This research seeks to connect microscopic material structures with macroscopic astrophysical phenomena by redefining several key concepts.
  • Reinterpreted nuclear force and angular momentum as emergent properties.
  • Analyzed stability of neutrons in binding environments.
  • Explored macroscopic behaviors of neutron stars and black holes.
  • Investigated implications for galactic mass concentration and environmental material formation.
  • Identified that neutron stability is analogously extended to neutron stars and black holes.
  • Demonstrated that black holes stabilize mass and energy in galaxies.
  • Shown that neutron stars promote fragmentation and recirculation of material.
  • Connected macro processes to the formation of interstellar matter and Earth's core.

Abstract

This study aims to bridge the discontinuous interpretations between microscopic material structure and macroscopic astrophysical systems by reinterpreting nuclear force and angular momentum not as intrinsic, independent forces of matter, but as emergent consequences of a contractive rotational order formed through resonance and the long-term inertial effects of magnetic fields. At the microscopic scale, neutrons are unstable in a free state but acquire stability within binding environments, and this concept of collective stability is shown to extend analogously to the macroscopic behavior of neutron stars and black holes. While black holes play a stabilizing role by concentrating and aligning mass and energy at galactic centers, neutron stars promote material fragmentation and recirculation through unstable rotation and high mobility. These macroscopic processes of fragmentation and circulation extend to the formation of interstellar matter, meteorites, the iron-dominated core of the Earth, and the distribution of iron oxide minerals, ultimately linking to the material foundations of habitable environments. Through a resonance-based rotational framework, this study proposes a structural isomorphism between microscopic material composition and macroscopic cosmic structures, offering an integrated interpretation of material evolution. *Note: This paper is part of a series of studies. For a more comprehensive understanding, readers are encouraged to refer to the materials listed below.

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Cite This Study

DEOKHO JEON (2026) studied this question.

synapsesocial.com/papers/69e1cf625cdc762e9d858422https://doi.org/10.5281/zenodo.19583302
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