Atomic clocks and gravitational waves as probes of non-metricity
Abstract
Non-metricity provides a natural extension of Riemannian geometry, yet its experimental signatures remain largely unexplored. In this work we investigate how spacetime non-metricity can be probed through high-precision observations, focusing on atomic clocks and gravitational waves as complementary tools. Working within Weyl geometry as a minimal realization of vectorial non-metricity, we formulate observable effects in a gauge-invariant manner and show that they are associated with path-dependent length transport governed by the Weyl field strength. We derive constraints from atomic-clock experiments and demonstrate that, although gravitational waves do not directly source the Weyl field at linear order, its dynamical contribution induces a backreaction on gravitational-wave propagation, leading to an anomalous strain. As a result, the absence of deviations from General Relativity in current gravitational-wave observations already places meaningful and strong constraints on dynamical non-metric degrees of freedom.
Keywords
Cite
@article{arxiv.2601.19407,
title = {Atomic clocks and gravitational waves as probes of non-metricity},
author = {Mohsen Khodadi and Emmanuel N. Saridakis},
journal= {arXiv preprint arXiv:2601.19407},
year = {2026}
}
Comments
13 pages (two columns), 1 table