English

Cavendish experiment with fast radio bursts on cosmological scales

Cosmology and Nongalactic Astrophysics 2026-04-21 v3

Abstract

A key measure of gravity is the relation between the Weyl potential Ψ+Φ\Psi+\Phi and the matter overdensity δm\delta_m, encapsulated as an effective gravitational constant GlightG_{\rm light} for light motion. Its value, along with possible spatial and temporal variations, is essential for probing physics beyond Einstein gravity. However, the absence of an unbiased proxy for δm\delta_m prevents the direct measurement of GlightG_{\rm light}. In this work, we show that within a theoretical framework respecting the weak equivalence principle, the dispersion measure (DM) of localized fast radio bursts (FRBs) serve as a good proxy for δm\delta_m. We further propose an FRB-based estimator FGF_G to directly measure GlightG_{\rm light}, combining galaxy-DM of localized FRBs and galaxy-weak lensing cross-correlations. With a conservative cut k0.1h/Mpck\leq 0.1\, h/{\rm Mpc}, the measurement can achieve a precision of 10%105/NFRB\lesssim 10\% \sqrt{10^5/N_{\rm FRB}} over 10 equal-width redshift bins at z1z\lesssim 1. The major systematic error, arising from the clustering bias of electrons traced by the FRB DM, remains subdominant at the 5%5\% level. It can be further mitigated to the 1%\lesssim 1\% level, based on the gastrophysics-agnostic behavior that the clustering bias of total baryons (ionized diffuse gas, stars, neutral hydrogen, etc) approaches unity at sufficiently large scales. Therefore, FRBs shed light on gravitational physics across spatial and temporal scales spanning 20 orders of magnitude.

Keywords

Cite

@article{arxiv.2510.11022,
  title  = {Cavendish experiment with fast radio bursts on cosmological scales},
  author = {Shuren Zhou and Pengjie Zhang},
  journal= {arXiv preprint arXiv:2510.11022},
  year   = {2026}
}

Comments

5+3 pages, 2+2 figures. To be published in Physical Review D