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April 1, 20260 citationsOpen Access

Causal Field Theory IV: Quantum Gravity and the Causal Wheeler-DeWitt Equation

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MAMahmoud F. Abdel-Sattar

Key Points

  • This work aims to achieve a complete quantization of gravity using causal field theory in a simplified model.
  • Applied the minisuperspace approximation to quantize gravity.
  • Derived the causal Wheeler-DeWitt equation using ADM formalism.
  • Constructed a Hermitian time operator for accurate time evolution.
  • Analyzed physical Hamiltonian for energy spectrum outcomes.
  • Identified a discrete energy spectrum with 24 bound states.
  • Ground state energy calculated at E_0 = -3051.43 in Planck units.
  • Unified models of dark matter, dark energy, and Hubble tension using the field φ.
  • Showed compliance of gravitational wave propagation with experimental data.

Abstract

We present the first complete quantization of gravity within the framework of Causal Field Theory in the minisuperspace approximation, where spacetime is endowed with a dynamical causal structure described by a scalar field. Starting from the principle of causal optimality, the modified Einstein equations and the causal potential V () = (e^2-1-2) were derived in previous work (Papers I, II, and III). Using the ADM formalism, we obtain the causal Wheeler-DeWitt equation (Eq. ~14 in the main text), where a is the scale factor and is the wave function of the universe. The field is shown to be monotonic, allowing it to serve as an intrinsic quantum clock. A Hermitian time operator t is constructed with an accuracy better than 0. 03\% over the physical domain, transforming the Wheeler-DeWitt equation into a Schr\"odinger equation iₜ = H₏₇ₘₒ. The physical Hamiltonian yields a discrete energy spectrum with 24 bound states and ground state energy E₀ = -3051. 43 (in Planck units). Building on previous work (Papers I, II, and III), the same field unifies dark matter (_=0. 429 from SPARC data), dark energy (ₕ₀₂=0. 3476), the Hubble tension (0. 0786, yielding H₋₎₂₀₋/H₂₌₁ = 1. 0829), and gravitational wave propagation (satisfying the GW170817 bound with |vg-c|/c 210^-24 for LIGO-band frequencies). This work constitutes the first complete quantization of gravity within the causal field framework in minisuperspace, resolving the long-standing problem of time in quantum gravity and eliminating classical singularities. The discrete energy spectrum of the universe emerges as a new quantum prediction, potentially detectable through imprints on the cosmic microwave background.

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Cite This Study

Mahmoud F. Abdel-Sattar (2026) studied this question.

synapsesocial.com/papers/69ccb72e16edfba7beb88f7ahttps://doi.org/10.5281/zenodo.19337155
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Causal Field Theory II: A Unified Framework for Dark Matter, Dark Energy, and the Hubble Tension2026
  2. 2Unified Scalar Field Theory of Gravity: Classical, Quantum, and Phenomenological Perspectives2025
  3. 3Quantum Field Theory Implications of the Emergent Causal Time Field2026
  4. 4Causal Field Theory: Dynamical Dark Energy from the Principle of Causal Optimality2026
  5. 5Causal Field Theory: Dynamical Dark Energy from the Principle of Causal Optimality2026