A Conservative Theory of Semiclassical Gravity
Francisco Pipa

TL;DR
This paper proposes a conservative, decoherence-based approach to semiclassical gravity where only quantum systems undergoing environment-induced decoherence source gravity, leading to testable predictions and potential explanations for vacuum non-gravitation and a variable cosmological constant.
Contribution
It introduces a novel decoherence chain model that links environment-induced decoherence to the emergence of gravity without modifying standard quantum theory.
Findings
Gravity depends on decoherence events, not all quantum systems.
The approach predicts a non-gravitating vacuum and a time-varying cosmological constant.
Testable differences in gravitational sourcing and entanglement mediation are identified.
Abstract
We argue that semiclassical gravity can be made consistent if quantum systems source gravity only when they participate in non-gravitational interactions that lead to environment-induced decoherence. Outside such decoherence-based events, systems do not contribute their stress-energy to the semiclassical equations, so regions lacking these interactions may remain (approximately) flat. The proposal is testable by probing the gravitational field sourced by systems, which should depend entirely on environment-induced decoherence; by gravity not mediating entanglement in the Bose-Marletto-Vedral (BMV) experiment; and by how the reversibility of the initial state in this experiment would depend solely on this decoherence, distinguishing it from competing approaches. We propose a kind of decoherence-inducing interaction that leads systems to source gravity: it models decoherence as chains of…
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Taxonomy
TopicsQuantum Electrodynamics and Casimir Effect · Cosmology and Gravitation Theories · Noncommutative and Quantum Gravity Theories
