Papers
Topics
Authors
Recent
Search
2000 character limit reached

Interplay of Compaction, Quenching, and Black Hole Growth in the Most Massive Galaxies since z∼5z\sim5: Insights from JWST and Chandra Data

Published 25 Aug 2026 in astro-ph.GA | (2608.24124v1)

Abstract: The buildup of dense stellar cores is expected to mark an important transition in the star-formation and black-hole growth of massive galaxies. Using spatially resolved spectral energy distribution (SED) fitting of James Webb Space Telescope near-infrared imaging, combined with stacking analysis of Chandra X-ray data, we trace stellar mass buildup and average black hole accretion in the most massive galaxies at $z&lt;5$, selecting 50 most massive galaxies per redshift bin at constant number density of ∼4.4×10<sup>−5\sim4.4\times10<sup>{-5} cMpc<sup>−3<sup>{-3}. To robustly constrain central stellar populations, we separate active galactic nuclei (AGN) components affecting the photometry using multi-band morphological decomposition and SED analysis. We find that the sample selected with constant number density exhibits evolutionary trend of rapid central compaction at z∼4z\sim4, during which the median central 1 kpc stellar mass increases by ∼0.60\sim0.60 dex over ∼400\sim400 Myr. The majority of X-ray detected AGN (63%±12%63\%\pm12\%) are hosted by galaxies undergoing the compaction, while we find neither individually detected X-ray sources nor a significant stacked X-ray signal at $z&gt;4$, indicating that substantial average black-hole growth emerges primarily during, rather than before, the compaction. Following the compaction, central specific star formation rates (sSFR) decline by ∼1.24\sim1.24 dex over ∼700\sim700 Myr at z∼3z\sim3 while remaining elevated galaxy-wide, signaling the onset of inside-out quenching. Despite this central suppression, specific black hole accretion rate remains coupled to the total sSFR. Our results suggest that dense-core formation in the most massive galaxies marks the onset of inside-out quenching and a transition toward enhanced black-hole to stellar growth ratio.

Summary

No one has generated a summary of this paper yet.

Paper to Video (Beta)

No one has generated a video about this paper yet.

Whiteboard

No one has generated a whiteboard explanation for this paper yet.

Continue Learning

We haven't generated follow-up questions for this paper yet.

Tweets

Sign up for free to view the 1 tweet with 0 likes about this paper.