Stochastic dark matter: Covariant Brownian motion from Planckian discreteness
Emma Albertini, Arad Nasiri, Emanuele Panella

TL;DR
This paper introduces a covariant Brownian motion model for particles in quantum gravity, showing it can explain dark matter behavior and resolve the $S_8$ tension in cosmology.
Contribution
It develops a unique, covariant stochastic correction to geodesic motion derived from quantum gravity principles, applied to dark matter.
Findings
Covariant Brownian motion leads to late-time dark matter warming.
The model suppresses small-scale matter power spectrum.
It offers a potential resolution to the $S_8$ tension.
Abstract
Quantum gravity has long remained elusive from an observational standpoint. Developing effective cosmological models motivated by the fundamental aspects of quantum gravity is crucial for bridging theory with observations. One key aspect is the granularity of spacetime, which suggests that free particles would deviate from classical geodesics by following a covariant Brownian motion. This notion is further supported by swerves models in causal set theory, a discrete approach to quantum gravity. At an effective level, such deviations are described by a stochastic correction to the geodesic equation. We show that the form of this correction is strictly restricted by covariance and the mass-shell condition. Under minimal coupling to curvature, the resulting covariant Brownian motion is unique. The process is equivalently described by a covariant diffusion equation for the distribution of…
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Taxonomy
TopicsQuantum Mechanics and Applications · Cosmology and Gravitation Theories · Relativity and Gravitational Theory
