English

Do spiral arms enhance star formation efficiency?

Astrophysics of Galaxies 2024-05-10 v1

Abstract

Spiral arms are some of the most spectacular features in disc galaxies, and also present in our own Milky Way. It has been argued that star formation should proceed more efficiently in spiral arms as a result of gas compression. Yet, observational studies have so far yielded contradictory results. Here we examine arm/interarm surface density contrasts at ~100 pc resolution in 28 spiral galaxies from the PHANGS survey. We find that the arm/interarm contrast in stellar mass surface density (Sigma_*) is very modest, typically a few tens of percent. This is much smaller than the contrasts measured for molecular gas (Sigma_mol) or star formation rate (Sigma_SFR) surface density, which typically reach a factor of ~2-3. Yet, Sigma_mol and Sigma_SFR contrasts show a significant correlation with the enhancement in Sigma_*, suggesting that the small stellar contrast largely dictates the stronger accumulation of gas and star formation. All these contrasts increase for grand-design spirals compared to multi-armed and flocculent systems (and for galaxies with high stellar mass). The median star formation efficiency (SFE) of the molecular gas is 16% higher in spiral arms than in interarm regions, with a large scatter, and the contrast increases significantly (median SFE contrast 2.34) for regions of particularly enhanced stellar contrast (Sigma_* contrast >1.97). The molecular-to-atomic gas ratio (Sigma_mol/Sigma_atom) is higher in spiral arms, pointing to a transformation of atomic to molecular gas. In conclusion, the boost in the star formation efficiency of molecular gas in spiral arms is generally modest or absent, except for locations with exceptionally large stellar contrasts. (abridged)

Keywords

Cite

@article{arxiv.2405.05364,
  title  = {Do spiral arms enhance star formation efficiency?},
  author = {Miguel Querejeta and Adam K. Leroy and Sharon E. Meidt and Eva Schinnerer and Francesco Belfiore and Eric Emsellem and Ralf S. Klessen and Jiayi Sun and Mattia Sormani and Ivana Bešlic and Yixian Cao and Mélanie Chevance and Dario Colombo and Daniel A. Dale and Santiago García-Burillo and Simon C. O. Glover and Kathryn Grasha and Brent Groves and Eric. W. Koch and Lukas Neumann and Hsi-An Pan and Ismael Pessa and Jérôme Pety and Francesca Pinna and Lise Ramambason and Alessandro Razza and Andrea Romanelli and Erik Rosolowsky and Marina Ruiz-García and Patricia Sánchez-Blázquez and Rowan Smith and Sophia Stuber and Leonardo Ubeda and Antonio Usero and Thomas G. Williams},
  journal= {arXiv preprint arXiv:2405.05364},
  year   = {2024}
}

Comments

26 pages, 16 figures. Accepted for publication in A&A

R2 v1 2026-06-28T16:21:19.337Z