Quantum Spacetime from Constraints: Wave Equations and Fields

Abstract In previous works, we showed that both time and space can emerge from entanglement within a globally constrained quantum Universe, with no background coordinates. By extending the Page and Wootters quantum time formalism to include both quantum clocks and rods, and imposing global constraints on total energy and momentum, we constructed a fully relational model of quantum spacetime. Here we take a further step: working in 1+1 dimensions, we show that the standard wave equations governing quantum particles–the Schrödinger, Klein-Gordon and Dirac equations–emerge naturally from this framework. The solutions of the equations are derived directly from the constraints, without assuming any external spacetime structure. The second quantization formalism is also implemented and discussed. Our results provide further support for the idea that quantum dynamics may emerge from entanglement and constraints.

Authors

Publication Details

Journal
International Journal of Theoretical Physics
Published
2026-10-08
DOI
https://doi.org/10.1007/s10773-026-06495-y
Primary Topic
Noncommutative and Quantum Gravity Theories
Type
article
Field-Weighted Citation Impact
0.00
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article

Quantum Spacetime from Constraints: Wave Equations and Fields

Tommaso Favalli
International Journal of Theoretical Physics
Noncommutative and Quantum Gravity Theories
article

Quantum Spacetime from Constraints: Wave Equations and Fields

Tommaso Favalli
article en

Abstract

Abstract In previous works, we showed that both time and space can emerge from entanglement within a globally constrained quantum Universe, with no background coordinates. By extending the Page and Wootters quantum time formalism to include both quantum clocks and rods, and imposing global constraints on total energy and momentum, we constructed a fully relational model of quantum spacetime. Here we take a further step: working in 1+1 dimensions, we show that the standard wave equations governing quantum particles–the Schrödinger, Klein-Gordon and Dirac equations–emerge naturally from this framework. The solutions of the equations are derived directly from the constraints, without assuming any external spacetime structure. The second quantization formalism is also implemented and discussed. Our results provide further support for the idea that quantum dynamics may emerge from entanglement and constraints.

International Journal of Theoretical PhysicsVol. 65(10)
Openalex Percentile: Top 99%
Noncommutative and Quantum Gravity Theories
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