English

Through Thick and Thin: The Cosmic Evolution of Disk Scale Height

Astrophysics of Galaxies 2026-01-29 v2

Abstract

To investigate the formation and evolution of vertical structures in disk galaxies, we measure global sech2\operatorname{sech}^2 scale heights, averaging thin and thick components when present, for 2631 edge-on disk galaxies with M>1010MM_*>10^{10} M_\odot at 0<z<3.50<z<3.5 from the JWST COSMOS-Web survey. We show that dust extinction systematically overestimates scale heights at shorter rest-frame wavelengths, and therefore adopt a fixed rest-frame wavelength of 1 μ\mum. After further correcting for projection-induced bias using a new accurate method, we find that the median disk scale height increases from 0.56±0.030.56\pm0.03 kpc at z=3.25z=3.25 to 0.84±0.040.84\pm0.04 kpc at z=1.25z=1.25, and subsequently decreases to 0.67±0.060.67\pm0.06 kpc at z=0.25z=0.25. The bias-corrected disk scale-length-to-height ratio remains constant at 2.7±0.22.7\pm0.2 for z>1.5z>1.5, but rises to 4.0±0.44.0\pm0.4 at z=0.25z=0.25. These results imply that the high-redshift progenitors of present-day thick disks were of intermediate thickness, neither thin nor thick, yet dynamically hot and dense. The observed radial variation of scale height is consistent with the artificial flaring expected from observational effects, disfavoring minor mergers as the primary mechanism of disk thickening. Instead, we suggest that the high-redshift intermediate-thickness disks were single-component systems that increased their vertical scale height through decreasing surface mass density and/or violent gravitational instabilities, eventually producing thick disks. Thin-disk growth begins at z2z\approx2 and dominates at z1z\lesssim1, yielding a vertically more compact system with decreasing scale heights from z1z\approx1 to 00. The inferred thin-disk mass fraction increases from 0.1±0.030.1\pm0.03 at z=1z=1 to 0.6±0.10.6\pm0.1 at z=0z=0. Together, these findings reveal a continuous evolutionary link between high-redshift single-component disks and present-day thick thin disk systems.

Keywords

Cite

@article{arxiv.2601.04988,
  title  = {Through Thick and Thin: The Cosmic Evolution of Disk Scale Height},
  author = {Si-Yue Yu and Luis C. Ho and Takafumi Tsukui and John D. Silverman and Marc Huertas-Company and Anton M. Koekemoer and Maximilien Franco and Richard Massey and Lilan Yang and Rafael C. Arango-Toro and Andreas L. Faisst and Ghassem Gozaliasl and Kartik Sheth and Jeyhan S. Kartaltepe and Can Xu and Aryana Haghjoo and Xuheng Ding and Zhaoxuan Liu and Jacqueline McCleary},
  journal= {arXiv preprint arXiv:2601.04988},
  year   = {2026}
}

Comments

32 pages, 22 figures, and 3 tables. Minor revisions were made; accepted for publication in ApJS

R2 v1 2026-07-01T08:56:12.362Z