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A Bending in the Size–Mass Relation of Star-forming Galaxies across 0.5 < z < 6.0 at a Critical Stellar Mass of 1010M Revealed by JWST

  • Longyue Chen
  • , Tao Wang*
  • , Hanwen Sun
  • , Ke Xu
  • , Luwenjia Zhou
  • , Tiancheng Yang
  • , Maxime Tarrasse
  • , Houjun Mo
  • , Zhaozhou Li
  • , Yangyao Chen
  • , Avishai Dekel
  • , Emanuele Daddi
  • , Xuheng Ding
  • , Mauro Giavalisco
  • , David Elbaz
  • *Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

Abstract

We investigate the rest-frame optical size–stellar mass relation of galaxies at 0.5 < z < 6.0 using deep JWST/NIRCam and MIRI imaging from the PRIMER survey. We find that star-forming galaxies (SFGs) exhibit a broken power-law relation at all redshifts, with a nearly constant pivot mass (Mp) of ∼1010M and a slope flattening above Mp. This highlights the prevalence of a population of compact, massive SFGs that was underrepresented in previous studies. The size distribution of quiescent galaxies (QGs) is well described by a mixture power-law model, with a pivot mass that increases from Mp ∼ 1010.0Mat z = 0.75 to Mp ∼ 1010.5M at z = 2.6, suggesting that the minimum halo mass required to quench high-mass galaxies increases with redshift. The bending in the size–mass relation of SFGs supports two distinct size growth modes. At M < Mp, size growth is closely coupled to halo growth, while at M > Mp, an increasing fraction of SFGs decouple from halo growth and become compact, likely associated with rapid bulge (and black hole) growth in Mh ≳ 1012Mhalos. These compact SFGs are promising progenitors of massive QGs, as evidenced by their similar masses, surface brightness profiles, and morphologies. Their high number densities can account for the observed buildup of massive QGs at z > 2, suggesting that the compaction pathway, rather than major mergers of extended SFGs, dominates the formation of high-z massive QGs.

Original languageEnglish
Article numberL40
JournalAstrophysical Journal Letters
Volume1002
Issue number2
DOIs
StatePublished - 10 May 2026

Bibliographical note

Publisher Copyright:
© 2026. The Author(s). Published by the American Astronomical Society. Original content from this work may be used under the terms of the https://creativecommons.org/licenses/by/4.0/.

Keywords

  • Galaxies (573)
  • Galaxy evolution (594)
  • Galaxy structure (622)
  • High-redshift galaxies (734)

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