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May 25, 20260 citationsOpen Access

"Quantum Emergent Geometry: How Nuclear History Shapes Galactic Gravity"

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NCN.L. Capa; I.A. Colaborativa

Key Points

  • This research explores how quantum entanglement influences the geometry of spacetime and gravitational anomalies in galaxies.
  • Proposes Quantum Emergent Geometry as a new framework.
  • Introduces an entanglement tensor to extend Einstein's field equations.
  • Identifies four open problems to evaluate the hypothesis.
  • Suggests that gravitational anomalies in galactic rotation curves relate to quantum information structures.
  • Indicates that Quantum Emergent Geometry may provide insights into dark matter phenomena.
  • Proposes formalism related to MOND as an effective approximation for Eμν in galaxies.

Abstract

We propose that the geometry of spacetime does not depend exclusively on the local distribution of mass and energy, but also on the global structure of quantum entanglement between visible matter. This hypothesis, called Quantum Emergent Geometry (QEG), extends Einstein's field equations through an entanglement tensor Eμν that captures the geometric contribution of accumulated quantum correlations. QEG predicts that the gravitational anomalies observed in galactic rotation curves, currently attributed to dark matter, are the projection onto visible geometry of a deeper quantum information structure. The hypothesis inherits the empirical evidence of MOND by proposing that formalism is an effective approximation of the physics of Eμν in the galactic regime. Four specific open problems are identified whose resolution would determine the viability of the hypothesis.

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Cite This Study

N.L. Capa; I.A. Colaborativa (2026) studied this question.

synapsesocial.com/papers/6a13e8030e02ee3982d32adbhttps://doi.org/10.5281/zenodo.20349987
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