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November 9, 20250 citationsOpen Access

A Conservative Theory of Semiclassical Gravity

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FPFrancisco Pipa

Key Points

  • Semiclassical gravity alters based on how quantum systems experience decoherence, which affects their gravitational influence.
  • The absence of decoherence indicates that a quantum system does not contribute to the stress-energy tensor in semiclassical equations.
  • This approach introduces Stable Determination Chains to explain gravity while respecting quantum theory without nonlocal variables or retrocausal factors.
  • Significantly, it predicts a time-varying cosmological constant that aligns with recent observational evidence.

Abstract

We argue that semiclassical gravity can be made consistent by assuming that quantum systems source or are classically affected by a gravitational field only when they undergo certain non-gravitational interactions that give rise to environment-induced decoherence. When systems are not affected by this decoherence-inducing process, they do not source a gravitational field, and the expectation value of their stress-energy tensor does not enter the semiclassical equations describing the gravitational field in a region. In the absence of these interactions in a region, spacetime may be flat. We argue that this can be tested by investigating the gravitational field sourced by quasi-isolated systems and the absence of gravity-mediated entanglement in the Bose-Marletto-Vedral (BMV) experiment, providing distinct predictions. We propose a possible kind of decoherence-inducing interactions that give rise to gravity, which involve chains of causally ordered non-gravitational localized interactions between quantum systems modeled via decoherence and test functions that we call Stable Determination Chains (SDCs). SDCs obey conditions that aim to address the measurement problem and allow for a conservative theory of gravity. It is conservative because it does not need to modify the fundamental equations of quantum theory, unlike spontaneous and gravity-induced collapse approaches to semiclassical gravity, and without invoking relationalism. Furthermore, it does not appeal to nonlocal, retrocausal, or superdeterministic hidden variables. We argue that these SDCs provide additional benefits, such as a semiclassical estimate of the value of the cosmological constant, the prediction of a time-varying cosmological constant that weakens with time, in agreement with some of the recent evidence, and a proposal about how SDCs give rise to gravity.

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Cite This Study

Francisco Pipa (2025) studied this question.

synapsesocial.com/papers/690fdce2f60c54d04ea3838chttps://doi.org/10.48550/arxiv.2507.05237
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