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January 14, 2026Quantum Reports0 citationsOpen Access

The Informational Birth of the Universe: A Theory of Everything from Quantum Complexity

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GCGaston Sanglier ContrerasRGRoberto Alonso González-LezcanoEFEduardo J. López Fernández

Key Points

  • To develop a unified theoretical framework explaining the origins of space-time and matter through a Primordial Quantum Field.
  • Introduced the concept of a Primordial Quantum Field (PQF) as a non-local informational substrate.
  • Developed a new physical quantity called complexity entropy Sc[ϕ] to quantify organizational dynamics of the PQF.
  • Explored how complexity gradients can create emergent geometry, affecting spacetime properties and constants.
  • Identified dark energy as a form of informational coherence pressure.
  • Predicted measurable phenomena such as entanglement waves in quantum systems.
  • Illustrated a direct relationship between self-organization in the PQF and physical properties.

Abstract

We propose a unified theoretical framework grounded in a Primordial Quantum Field (PQF)—a continuous, non-local informational substrate that precedes space-time and matter. The PQF is represented by a wave functional evolving in an abstract configuration space, where physical properties emerge through the self-organization of complexity. We introduce a novel physical quantity—complexity entropy Scϕ—which quantifies the structural organization of the PQF. Unlike traditional entropy measures (Shannon, von Neumann, Kolmogorov), Scϕ captures non-trivial coherence and functional correlations. We demonstrate how complexity gradients induce an emergent geometry, from which spacetime curvature, physical constants, and the arrow of time arise. The model predicts measurable phenomena such as entanglement waves and reinterprets dark energy as informational coherence pressure, suggesting empirical pathways for testing via highly correlated quantum systems.

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Cite This Study

Contreras et al. (2026) studied this question.

synapsesocial.com/papers/6966e73513bf7a6f02bffbcehttps://doi.org/10.3390/quantum8010004
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