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April 12, 20260 citationsOpen Access

Axiomatic Unification of Quantum Mechanics, Thermodynamics, and Gravity via Complex Time, Information Geometry, and Entropic Gradient Flow

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YLyuanjian li

Key Points

  • The aim is to unify quantum mechanics, thermodynamics, and gravity using a novel framework based on three principles.
  • Developed a formal framework based on axioms related to complex time, information geometry, and entropy.
  • Constructed an action on a complex time contour and derived generalized Einstein equations.
  • Derived complex-time evolution equations and examined linear response in relation to the Kubo formula.
  • Showed that spacetime curvature relates to quantum entanglement entropy density.
  • Proposed explicit forms for geometric terms connected to information theory.
  • Predicted modifications to gravitational waves due to entanglement and insights into black hole physics.

Abstract

We propose a unified formal framework for quantum mechanics, thermodynamics, and gravity based on three axioms: (i) Complex Time Principle: Physical processes are described by first-order evolution on a complex time manifold, with real time corresponding to unitary quantum coherence and imaginary time to thermal dissipation. (ii) Information--Geometry Equivalence: Spacetime curvature is locally equivalent to the density of quantum entanglement entropy. (iii) Maximal Entropy Gradient Principle: The evolution of a physical system follows the \ (L²\) -gradient flow of a free energy functional that includes the quantum Fisher information. From these axioms we construct an action on a complex time contour, derive generalized Einstein equations and complex-time evolution equations, and show that the linear response limit recovers the Kubo formula and standard Einstein gravity. We propose an explicit covariant form for the information-geometric coupling term \ (₈₍₅₎\) and discuss testable predictions, including modifications to gravitational wave waveforms from entanglement entropy, imaginary-time coherence effects near black hole horizons, and geometric phases in quantum heat engines driven by Fisher information metric.

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Cite This Study

yuanjian li (2026) studied this question.

synapsesocial.com/papers/69db37ca4fe01fead37c5d82https://doi.org/10.5281/zenodo.19491059
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