English

Understanding Galaxy Rotation Curves with Verlinde's Emergent Gravity

General Relativity and Quantum Cosmology 2022-12-28 v3 Astrophysics of Galaxies High Energy Physics - Theory

Abstract

We present the results from the analysis of galaxy rotation curves with Verlinde's emergent gravity. We use the data in the SPARC (Spitzer Photometry and Accurate Rotation Curves) database, which contains a sample of 175 nearby disk galaxies with 3.6 μ\mum surface photometry and rotation curves. We compute the gravitational acceleration at different galactocentric radii expected from the baryon distribution of the galaxies with the emergent gravity, and compare it with the observed gravitational acceleration derived from galactic rotation curves. The predicted and observed accelerations agree well with a mean offset μ[log(gobs)log(gVer)]=0.060±0.004\mu{\rm [log(g_{obs})-log(g_{Ver})]}=-0.060\pm0.004 and a scatter σ[log(gobs)log(gVer)]=0.137±0.004\sigma{\rm [log(g_{obs})-log(g_{Ver})]}=0.137\pm0.004 by assuming a de Sitter universe. These offset and scatter become smaller when we assume a more realistic universe, quasi de Sitter universe, as μ=0.027±0.003\mu=-0.027\pm0.003 and σ=0.129±0.003\sigma=0.129\pm0.003. Our results suggest that Verlinde's emergent gravity could be a good solution to the missing mass problem without introducing dark matter.

Keywords

Cite

@article{arxiv.2206.11685,
  title  = {Understanding Galaxy Rotation Curves with Verlinde's Emergent Gravity},
  author = {Youngsub Yoon and Jong-Chul Park and Ho Seong Hwang},
  journal= {arXiv preprint arXiv:2206.11685},
  year   = {2022}
}

Comments

11 pages, 2 figures. To appear in Classical and Quantum Gravity