REVIEW 2 cited by
Radio-AGN activity across the galaxy population: dependence on stellar mass, star-formation rate, and redshift
T0 review · reviewed 2026-08-12 · deepseek-v4-flash
Pith's one-line read Using LOFAR deep fields, the incidence of radio-loud AGN depends on both stellar mass and star-formation rate: quiescent-host LERGs follow a redshift-invariant steep mass relation, and lower-mass star-forming galaxies show up to 10 times higher LERG incidence.
desk verdict The quiescent-LERG and massive-galaxy results look solid, but the headline factor-of-10 enhancement of LERG activity in low-mass star-forming galaxies is not yet established because the radio-excess selection does not model contamination by star-forming galaxies. read the letter →
The pith
A machine-rendered reading of the paper's core claim, the machinery that carries it, and where it could break.
The reading
The authors measured the fraction of galaxies hosting a LERG or HERG as a function of stellar mass, star-formation rate, and redshift, using about 540,000 galaxies and about 3,900 AGN above a fixed radio luminosity. The key results: in quiescent (non-star-forming) galaxies, the LERG fraction rises steeply with stellar mass and this relation does not change between redshift 0.3 and 1.5. In massive galaxies (above about 10^11 solar masses), the LERG fraction is about the same whether the galaxy is star-forming or quiescent. At lower masses, star-forming galaxies are up to 10 times more likely to host a LERG than quiescent galaxies, and this gap grows with redshift. HERGs, by contrast, are mostly found in star-forming galaxies at all redshifts.
These patterns are interpreted as evidence for two fuelling paths: hot halo gas powers LERGs in massive and quiescent galaxies, while cold gas provides an additional trigger in lower-mass star-forming galaxies. The authors are careful about uncertainties: the radio-excess selection used to find AGN is incomplete in strongly star-forming galaxies, and they apply Monte Carlo corrections. They also validate their LERG/HERG classification with stacked optical spectra and X-ray data.
Extended reading notes
Core claim
The load-bearing assertion is from the abstract: 'At lower masses, however, LERG activity is significantly more enhanced (by a factor of up to 10) in star-forming galaxies compared to quiescent galaxies,' combined with the claim that LERG activity in quiescent galaxies shows a steep stellar mass dependence 'with the same normalisation across the past ~10 Gyr.' If true, radio-loud AGN are fuelled by hot gas in massive/quiescent systems and by an additional cold-gas mechanism in lower-mass star-forming systems.
Load-bearing premise
The Monte Carlo completeness corrections for the radio-excess AGN selection (Sec. 2.3, Appendix A) assume a 0.3 dex Gaussian scatter in the radio luminosity-SFR relation and weight the simulated sample by the LERG luminosity functions of Kondapally et al. (2022) and Best et al. (2014), the authors' own prior fits. The claimed factor-of-10 enhancement of LERG activity in star-forming galaxies at low stellar mass comes from SFR bins where these corrections are largest (SFR > 10 Msun/yr). If the true scatter is larger, or the luminosity functions are not representative, the enhancement could be a selection artifact.
Signed reviews
Editorial analysis
A structured set of objections, weighed in public.
Assumptions & free parameters
free parameters (7)
- Radio-excess ridgeline intercept and slope =
22.24, 1.08 (Best et al. 2023)
- Radio-excess threshold =
0.7 dex (about 3 sigma)
- Main-sequence coefficients and bin offsets =
SFR_MS coefficients (0.84, -0.026, -6.51, 0.11); offsets -1.3 and -0.4
- Completeness simulation scatter =
0.3 dex
- Black hole mass scaling =
MBH = 0.0014 M*
- Jet mechanical luminosity scaling =
Lkin = 7e36 f_cav (L1.4/1e25)^0.68 W
- SED classification thresholds =
fAGN,16 > 0.06 (CIGALE), >0.1 in Boötes
assumptions (6)
- domain assumption Flat LCDM cosmology with Omega_M=0.3, Omega_Lambda=0.7, H0=70
- domain assumption Radio spectral index alpha = -0.7 (S_nu ~ nu^alpha)
- domain assumption The radio-excess criterion identifies the radio-loud AGN population
- domain assumption SED-based LERG/HERG classification traces radiatively inefficient/efficient accretion
- domain assumption IRAC 3.6um-selected parent sample represents the underlying galaxy population
- ad hoc to paper The Speagle et al. main sequence is the correct reference for defining quiescent/intermediate/star-forming
Cite this review
Pith. "Pith review of Radio-AGN activity across the galaxy population: dependence on stellar mass, star-formation rate, and redshift." pith.science (2026). https://pith.science/paper/PUHWNB2Z
@misc{pith2026241108104,
author = {Pith},
title = {Pith review of: Radio-AGN activity across the galaxy population: dependence on stellar mass, star-formation rate, and redshift},
year = {2026},
howpublished = {\url{https://pith.science/paper/PUHWNB2Z}},
note = {Machine review of arXiv:2411.08104}
}
abstract
We characterise the co-evolution of radio-loud AGN and their galaxies by mapping the dependence of radio-loud AGN activity on stellar mass and star-formation rate (SFR) across cosmic time (out to $z \sim 1.5$). Deep LOFAR radio observations are combined with large galaxy samples to study the incidence of radio-loud AGN across the galaxy population; the AGN are further split into low-excitation radio galaxies (LERGs) and high-excitation radio galaxies (HERGs). We find that LERG activity occurs over a wide range of SFRs, whereas HERGs are typically found in galaxies with ongoing star formation. The LERGs are then split based on their SFRs relative to the main sequence, across redshift. Within quiescent galaxies, LERG activity shows a steep stellar mass dependence with the same normalisation across the past $\sim$ 10 Gyr; this indicates that hot gas fuels LERGs in quiescent galaxies across cosmic time. In massive galaxies ($\log_{10}(M/\rm{M_{\odot}}) \gtrsim 11$), the incidence of LERGs is roughly constant across the galaxy population, suggesting that LERGs in massive galaxies may be fuelled by hot gas regardless of the star-formation activity. At lower masses, however, LERG activity is significantly more enhanced (by a factor of up to 10) in star-forming galaxies compared to quiescent galaxies; this suggests that an additional fuelling mechanism, likely associated with cold gas, may fuel the LERGs in galaxies with higher SFRs. We find that HERGs typically accrete above 1 per cent of the Eddington-scaled accretion rate, and the LERGs typically accrete below this level.
Figures
Figures from the paper (3 more)
Forward citations
Cited by 2 Pith papers
-
The DESI View of the Faint Radio Source Population in LoTSS DR2
Probabilistic spectroscopic classification of 251k LoTSS radio sources yields the largest high-confidence sample and confirms LERGs accrete below ~1% Eddington while HERGs accrete above it.
-
The LOFAR Two-metre Sky Survey Deep Fields: new probabilistic spectroscopic classifications and the accretion rates of radio galaxies
A probabilistic spectroscopic classification of 4,471 radio sources finds that radiatively efficient and inefficient AGN have distinct Eddington-scaled accretion rates.
Reference graph
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write newline
" write newline "" before.all 'output.state := FUNCTION fin.entry write newline FUNCTION new.block output.state before.all = 'skip after.block 'output.state := if FUNCTION new.sentence output.state after.block = 'skip output.state before.all = 'skip after.sentence 'output.stat...
Reviewed August 12, 2026 · model on record in the stance chip above.
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