REVIEW 3 major objections 6 minor 1 cited by
The Evolution of Half-Mass Radii and Color Gradients for Young and Old Quiescent Galaxies at $0.5 < z < 3$ with JWST/PRIMER
T0 review · 3 major / 6 minor · reviewed 2026-08-10 · deepseek-v4-flash
Pith's one-line read Rest-frame infrared sizes faithfully trace the mass-weighted sizes of quiescent galaxies, and young and old quiescent galaxies have the same average size at intermediate masses across $0.5<z<3$.
desk verdict A careful age-split size study with a new mimicry result, but the headline claim that F444W sizes trace mass sizes is partly built into the method and needs external validation. 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
What carries the argument
The load-bearing object is the empirical color-to-mass-to-light relation, $\log(M_*/L_{\mathrm{F444W}}) = -2.5\,\log_{10}(F277W/F444W)\,A + C$, fitted in redshift bins to integrated colors and SED-based masses (Table 1). The paper uses the observed $F277W-F444W$ color to predict the stellar mass-to-light ratio at every radius, multiplies the F444W luminosity profile by this radial $M_*/L$ to get a mass profile, and integrates to obtain the half-mass radius. This is the step that turns light profiles into mass profiles, and it is where the assumption of universal radial $M_*/L$ enters.
What would settle it
Compare the half-mass radii obtained here with radii derived from spatially resolved stellar-population fitting (fitting the SED in concentric annuli or pixels) for the same galaxies; if the radial $M_*/L$ gradients differ, the half-mass radii and the $r_{e,\mathrm{mass}}/r_{e,\mathrm{light}}$ ratios would shift by more than the quoted uncertainties.
Extended reading notes
Core claim
The central claim is that the size growth of the red sequence between $z=3$ and $z=0.5$ is intrinsic to the population and not an artifact of measuring light rather than mass. The paper demonstrates that half-light radii measured at rest-frame infrared wavelengths ($\sim$4.4 µm) agree with half-mass radii, while rest-frame optical sizes ($0.5$–$0.7$ µm) run 0.1–0.2 dex larger. For intermediate-mass galaxies ($10<\log(M_*/M_\odot)<11$), young quiescent galaxies have the same average half-light and half-mass radii as old quiescent galaxies within uncertainties; the previously reported size difference appears only at $\log(M_*/M_\odot)>11$, where the present sample has only nine young objects. The paper argues that these results favor a mix of progenitor bias and minor mergers driving size growth, and that the increasing share of young quiescent galaxies at high redshift can mimic a redshift evolution of the $r_{e,\mathrm{mass}}/r_{e,\mathrm{light}}$ ratio.
Load-bearing premise
The load-bearing premise is that the color-to-mass-to-light relation fitted to each galaxy's integrated colors also holds at every radius inside the galaxy, so that radial color profiles can be converted into radial mass profiles.
Editorial extensions
If this is right
- Half-mass radii of quiescent galaxies grow by about 0.4–0.45 dex from $z=3$ to $z=0.5$, so the size growth of the red sequence is not an artifact of measuring light.
- Rest-frame infrared (F444W) half-light radii can be used as a direct proxy for half-mass radii in quiescent galaxies, simplifying future size studies.
- At intermediate masses, the agreement between young and old quiescent galaxies implies that both progenitor bias and minor mergers contribute to size growth, so simulations of quenching must include both channels.
- The apparent redshift evolution of the $r_{e,\mathrm{mass}}/r_{e,\mathrm{light}}$ ratio in the general quiescent population can be explained by the growing fraction of young quiescent galaxies at high redshift.
Reading between the lines
- The same color-to-$M_*/L$ method could be extended to star-forming galaxies, where stronger dust and star-formation gradients would test whether the universality of radial $M_*/L$ holds more generally.
- If the relation is truly universal in radius, then the similarity of young and old color gradients implies that intermediate-mass galaxies share similar radial stellar population structure regardless of quenching age; resolved spectroscopy could verify this directly.
- The 0.1–0.2 dex offset between optical and infrared sizes implies that single-band optical size measurements systematically overestimate the mass scale of quiescent galaxies; the method applied to wider-area JWST surveys could confirm this at the high-mass end, where the current sample has only nine young galaxies.
- Because IMF gradients could shift half-mass radii by up to 0.3 dex, the absolute sizes reported here rest on the assumed IMF; a spatially resolved dynamical or lensing mass calibration would set the scale.
Editorial analysis
A structured set of objections, weighed in public.
Referee Report
Summary. The manuscript uses JWST/NIRCam PRIMER imaging to measure half-light and half-mass radii of 455 quiescent galaxies at 0.5 < z < 3, split into 426 old and 39 young quiescent galaxies. Half-light radii are measured in six filters with GALFIT and residual-corrected surface brightness profiles. Half-mass radii are derived by converting F277W-F444W color profiles into M*/L444 profiles using a redshift-binned linear relation (Eq. 2) calibrated on the same galaxies' integrated colors and SED masses, then multiplying the F444W luminosity profiles by these M*/L profiles and integrating. The paper reports that rest-frame infrared sizes trace mass-weighted sizes while rest-frame optical sizes are 0.1-0.2 dex larger, that young and old quiescent galaxies have consistent sizes at intermediate masses, and that the changing young/old mix can mimic apparent evolution in re,mass/re,light. These results are interpreted as evidence for a combination of progenitor bias and minor mergers driving size growth.
Significance. If the half-mass radii are robust, the paper provides one of the first direct light- versus mass-weighted size comparisons for age-selected quiescent galaxies at 0.5 < z < 3 with JWST, and it has practical relevance for using infrared sizes as proxies for mass-weighted sizes. The strengths include careful Monte Carlo uncertainty propagation, residual-corrected SBPs, validation of 1D versus 2D radii, comparisons with literature measurements, and explicit discussion of caveats such as IMF-gradient effects. However, the central empirical claim depends on an unvalidated assumption about the radial applicability of the integrated color-M*/L relation, so the key results are currently conditional on that assumption rather than independently demonstrated.
major comments (3)
- [Section 3.2, Eq. (2), and Section 3.3] The color-M*/L relation is calibrated on the integrated colors and SED masses of the same sample and then applied at every radius inside each galaxy. Because the mass profile is the F444W luminosity profile scaled by the resulting M*/L profile, the re,mass/re,light ratio at F444W is partly built in: a shallow F277W-F444W color gradient yields a nearly constant M*/L profile, forcing re,mass to track re,light(F444W). The agreement between F444W sizes and half-mass sizes is therefore not an independent test of the claim that infrared light traces stellar mass. The appendix (Fig. 8) checks residuals against total mass, age, and flux, but not against radius. I request validation with spatially resolved SED fitting in annuli, or comparison with dynamical or lensing mass profiles; absent that, the headline claims should be reframed as conditional on the radial M*/L assumption.
- [Sections 4.1 and 5] The young quiescent sub-sample comprises only 39 galaxies, of which 9 are above log(M*/M_sun) > 11. The claim that young and old quiescent galaxies agree in size at intermediate masses is based on small-N bins and large galaxy-to-galaxy scatter. Although the paper notes this limitation, I would like a quantitative statement of the statistical power: what fractional size difference could be detected at 1-sigma with N=39 in the 10 < log(M*/M_sun) < 11 range? Without this, the conclusion of 'a combination of progenitor bias and minor mergers' is not strongly constrained by the data.
- [Section 2] Thirty-five percent of the parent sample is excluded because galaxies cannot be securely fit in all six available filters, and no test is presented of how the excluded systems differ in mass, redshift, concentration, or merging state. Since fitting failures in compact or irregular quiescent galaxies are plausibly correlated with the size measurements, this selection could bias the derived size distributions and the young/old comparison. I request a comparison of the included and excluded samples in mass-redshift space and in at least one measured property such as the F444W half-light radius from a forced fit.
minor comments (6)
- [Conclusions, bullet 3] The expression '(10<log(M*/M_sun)> 11)' should read '(10<log(M*/M_sun)<11)'.
- [Figure 2 caption] The label 'F227W' is a typo and should be 'F277W'.
- [Section 4.1] The exponent reported as '(-1.85 ± -0.27)' should be written with a positive uncertainty, e.g., '(-1.85 ± 0.27)', and the sign convention for R ∝ (1+z)^alpha should be stated explicitly.
- [Section 4.4] The phrase 'old and young quiescent galaxies quiescent galaxies are, on average, constant' contains a duplicated word and should be revised.
- [Appendix, Figure 8 caption] The caption contains the typo 'Depency'; it should be 'Dependence'.
- [Table 1] The quoted uncertainties on A and C are highly disparate across redshift bins, which likely indicates strong covariance between the two fitted parameters; presenting the full covariance matrix or a corner plot would help readers assess whether the bin-to-bin variations in A are meaningful.
Circularity Check
Half-mass radii are constructed by multiplying the F444W light profile by a color-M*/L relation fitted to the same galaxies, so the claim that F444W sizes trace mass is partly an artifact of the method rather than an independent empirical test.
-
fitted input called prediction
[Sec. 3.2-3.3, Eq. (2); Sec. 5]
"Next, we derive an empirical relation between the integrated colors of the galaxies and their M∗/L ratios, which we use to convert the color profiles into radial M∗/L profiles. Then, we multiply the radial M∗/L profiles with the derived luminosity profiles to derive radial mass profiles. ... We assume that these color-M∗/L444 relations are valid for integrated colors and radial trends inside each galaxy. ... To extract the radial mass profile, we multiply the luminosity profile measured in F444W with the M∗/LF444W profiles."
The half-mass radius is not an independent mass tracer: it is defined as the half-mass point of the F444W luminosity profile multiplied by a M*/L444 profile obtained from Eq. (2), whose slope and intercept are least-squares fits to the integrated F277W-F444W colors and SED masses of the very same galaxies (Table 1), under the explicit assumption that the relation holds at every radius. Consequently the later statement that half-light radii measured at observed 4.4 micron follow the half-mass radii closely is largely a restatement of the construction: if the observed radial color gradient is shallow, the radial M*/L factor is nearly constant and re,mass must coincide with the F444W half-light radius.
full rationale
The paper is transparent about its methodology, but the central size measurement is constructed: half-mass radii are obtained by taking the F444W radial luminosity profile and multiplying it by a radial M*/L444 profile whose normalization and slope come from Eq. (2), a fit to the integrated colors and SED masses of the same galaxies, assumed to hold at every radius (Sec. 3.2). Consequently the headline conclusion that F444W/rest-frame-IR sizes accurately trace mass-weighted sizes is not an independent empirical finding but an anticipated consequence of the method: a shallow F277W-F444W color gradient produces a nearly constant M*/L444 profile, which forces re,mass to track the F444W half-light radius. The paper does quantify integrated residuals and checks dependence on mass, age, and flux in Appendix A, but it never validates the color-M*/L relation radially against resolved SED fitting, dynamical masses, or lensing; it also explicitly cites Bernardi et al. (2023) showing that IMF or metallicity gradients can change half-mass sizes by up to 0.3 dex. The young/old comparison and the redshift and mass trends in color gradients retain independent observational content, and the self-citations to Clausen et al. (2024) are used mainly as context rather than as the derivation of the half-mass measurement. Still, the paper's signature claim that infrared light traces stellar mass is partially circular by construction, so the score is 5 rather than lower.
Assumptions & free parameters
free parameters (3)
- Color-M*/L relation slope A per redshift bin =
20 values in Table 1, e.g., -0.2752 +/- 0.0562 at 0.5<z<0.6 to 0.6406 +/- 0.143 at 2.6<z<3.0
- Color-M*/L relation intercept C per redshift bin =
20 values in Table 1, e.g., 0.2215 +/- 0.0246 at 0.5<z<0.6 to -2.7505 +/- 0.0358 at 2.6<z<3.0
- Size evolution power-law exponents alpha =
young half-light -1.85 +/- 0.27, old -1.35 +/- 0.08; young half-mass -2.33 +/- 0.05, old -1.81 +/- 0.04
assumptions (5)
- domain assumption The color-M*/L relation derived from integrated colors and SED masses is valid locally within each galaxy.
- domain assumption UVJ rest-frame colors correctly separate quiescent from star-forming and young from old quiescent galaxies.
- domain assumption GALFIT Sersic models plus residual correction recover the true light profiles; PSFs from unresolved stars in each band are accurate.
- domain assumption Chabrier IMF with no radial IMF gradients.
- domain assumption Photometric redshifts and PROSPECTOR stellar masses from the PRIMER catalog are accurate for the selected flags.
Cite this review
Pith. "Pith review of The Evolution of Half-Mass Radii and Color Gradients for Young and Old Quiescent Galaxies at $0.5 < z < 3$ with JWST/PRIMER." pith.science (2026). https://pith.science/paper/SH5UUPDA
@misc{pith2026250104788,
author = {Pith},
title = {Pith review of: The Evolution of Half-Mass Radii and Color Gradients for Young and Old Quiescent Galaxies at $0.5 < z < 3$ with JWST/PRIMER},
year = {2026},
howpublished = {\url{https://pith.science/paper/SH5UUPDA}},
note = {Machine review of arXiv:2501.04788}
}
abstract
We present a study of the size growth of the red sequence between $0.5<z<3,$ tracing the evolution of quiescent galaxies in both effective half-light and half-mass radii using multi-wavelength JWST/NIRCam imaging provided by the PRIMER survey. Half-light radii are measured from imaging in 6 different filters for 455 quiescent galaxies with log($M_*/M_{\odot}$)$>10$, whereas half-mass radii are derived from the F444W profiles together with the F277W-F444W color-$M_*$/L relation. We investigate the dependence of the ratio $r_{e, \mathrm{mass}}/r_{e, \mathrm{light}}$ on redshift, stellar mass, and the wavelength used to measure $r_{e, \mathrm{light}}$, also separating the sample into younger and older quiescent galaxies. Our data demonstrate that rest-frame infrared sizes accurately trace mass-weighted sizes while sizes measured at rest-frame optical wavelengths (0.5-0.7$\mu$m) are 0.1-0.2 dex larger, with only minor variations in redshift. We find that the average size of young quiescent galaxies agrees with that of old quiescent galaxies at intermediate masses, $10<$log($M_*/M_{\odot}$)$<11$, within their respective uncertainties in all observed-frame half-light, rest-frame half-light and half-mass radius measurements. At face value, our results point to a combination of progenitor bias and minor mergers driving the size growth of intermediate-mass quiescent galaxies at $0.5<z<3$. Our results further indicate that the varying contributions to the general quiescent population by young and old quiescent galaxies can mimic evolution in redshift.
Figures
Figures from the paper (6 more)
Forward citations
Cited by 1 Pith paper
-
Morphological Demographics of Galaxies at $z\sim 10-16$: Log-Normal Size Distribution and Exponential Profiles Consistent with the Disk Formation Scenario
Galaxies at z=10-16 have a log-normal size distribution with sigma 0.52, nearly uniform axis ratios, and exponential profiles, consistent with early disk formation.
Reference graph
Works this paper leans on
-
[1]
Akhshik , M., Whitaker , K. E., Leja , J., et al. 2023, , 943, 179, 10.3847/1538-4357/aca677
-
[2]
Almaini , O., Wild , V., Maltby , D. T., et al. 2017, , 472, 1401, 10.1093/mnras/stx1957
-
[3]
Barro , G., Faber , S. M., Koo , D. C., et al. 2017, , 840, 47, 10.3847/1538-4357/aa6b05
-
[4]
Bell , E. F., & de Jong , R. S. 2001, , 550, 212, 10.1086/319728
doi:10.1086/319728 2001
-
[5]
Belli , S., Newman , A. B., & Ellis , R. S. 2015, , 799, 206, 10.1088/0004-637X/799/2/206
-
[6]
2019, , 874, 17, 10.3847/1538-4357/ab07af
---. 2019, , 874, 17, 10.3847/1538-4357/ab07af
-
[7]
K., Dom \' nguez S \'a nchez , H., et al
Bernardi , M., Sheth , R. K., Dom \' nguez S \'a nchez , H., et al. 2023, , 518, 3494, 10.1093/mnras/stac3361
-
[8]
Bezanson , R., van Dokkum , P. G., Tal , T., et al. 2009, , 697, 1290, 10.1088/0004-637X/697/2/1290
Show all 83 references
-
[9]
M., Bschorr , T
Carollo , C. M., Bschorr , T. J., Renzini , A., et al. 2013, , 773, 112, 10.1088/0004-637X/773/2/112
2013 doi
-
[10]
M., Kartaltepe , J
Casey , C. M., Kartaltepe , J. S., Drakos , N. E., et al. 2023, , 954, 31, 10.3847/1538-4357/acc2bc
2023 doi
-
[11]
2015, , 447, 3291, 10.1093/mnras/stu2694
Ceverino , D., Dekel , A., Tweed , D., & Primack , J. 2015, , 447, 3291, 10.1093/mnras/stu2694
2015 doi
- [12]
-
[13]
Chan , J. C. C., Beifiori , A., Mendel , J. T., et al. 2016, , 458, 3181, 10.1093/mnras/stw502
2016 doi
-
[14]
2022, , 933, 228, 10.3847/1538-4357/ac75b4
Chen , X., Lin , Z., Kong , X., et al. 2022, , 933, 228, 10.3847/1538-4357/ac75b4
2022 doi
-
[15]
2008, , 482, 21, 10.1051/0004-6361:20078739
Cimatti , A., Cassata , P., Pozzetti , L., et al. 2008, , 482, 21, 10.1051/0004-6361:20078739
2008 doi
-
[16]
E., Momcheva, I., et al
Clausen, M., Whitaker, K. E., Momcheva, I., et al. 2024, 3D-DASH: The Evolution of Size, Shape, and Intrinsic Scatter in Populations of Young and Old Quiescent Galaxies at 0.5 < z < 3. 2405.09354
2024 arXiv
-
[17]
G., & Villaume , A
Conroy , C., van Dokkum , P. G., & Villaume , A. 2017, , 837, 166, 10.3847/1538-4357/aa6190
2017 doi
-
[18]
E., Whitaker , K
Cutler , S. E., Whitaker , K. E., Weaver , J. R., et al. 2024, , 967, L23, 10.3847/2041-8213/ad464c
2024 doi
-
[19]
J., Abraham , R
Damjanov , I., McCarthy , P. J., Abraham , R. G., et al. 2009, , 695, 101, 10.1088/0004-637X/695/1/101
2009 doi
-
[20]
2017, , 605, A70, 10.1051/0004-6361/201730419
Davidzon , I., Ilbert , O., Laigle , C., et al. 2017, , 605, A70, 10.1051/0004-6361/201730419
2017 doi
-
[21]
R., Drory , N., & Sheth , R
Dom \' nguez S \'a nchez , H., Bernardi , M., Brownstein , J. R., Drory , N., & Sheth , R. K. 2019, , 489, 5612, 10.1093/mnras/stz2414
2019 doi
-
[22]
S., Abraham , R
Dunlop , J. S., Abraham , R. G., Ashby , M. L. N., et al. 2021, PRIMER: Public Release IMaging for Extragalactic Research , JWST Proposal. Cycle 1, ID. \#1837
2021
-
[23]
J., Faber , S
Fang , J. J., Faber , S. M., Koo , D. C., & Dekel , A. 2013, , 776, 63, 10.1088/0004-637X/776/1/63
2013 doi
- [24]
-
[25]
2011, , 735, 18, 10.1088/0004-637X/735/1/18
Guo , Y., Giavalisco , M., Cassata , P., et al. 2011, , 735, 18, 10.1088/0004-637X/735/1/18
2011 doi
-
[26]
R., Muzzin , A., Franx , M., & van de Sande , J
Hill , A. R., Muzzin , A., Franx , M., & van de Sande , J. 2016, , 819, 74, 10.3847/0004-637X/819/1/74
2016 doi
- [27]
-
[28]
2017, , 843, L7, 10.3847/2041-8213/aa78f8
Ichikawa , A., & Matsuoka , Y. 2017, , 843, L7, 10.3847/2041-8213/aa78f8
2017 doi
-
[29]
J., Le F \`e vre , O., et al
Ilbert , O., McCracken , H. J., Le F \`e vre , O., et al. 2013, in SF2A-2013: Proceedings of the Annual meeting of the French Society of Astronomy and Astrophysics, ed. L. Cambresy , F. Martins , E. Nuss , & A. Palacios , 545--548
2013
-
[30]
La Barbera , F., & de Carvalho , R. R. 2009, , 699, L76, 10.1088/0004-637X/699/2/L76
2009 doi
-
[31]
2024, , 972, 134, 10.3847/1538-4357/ad5c6a
Martorano , M., van der Wel , A., Baes , M., et al. 2024, , 972, 134, 10.3847/1538-4357/ad5c6a
2024 doi
-
[32]
B., et al
Matharu , J., Muzzin , A., Brammer , G. B., et al. 2020, , 493, 6011, 10.1093/mnras/staa610
2020 doi
-
[33]
E., Schinnerer , E., van de Ven , G., et al
Meidt , S. E., Schinnerer , E., van de Ven , G., et al. 2014, , 788, 144, 10.1088/0004-637X/788/2/144
2014 doi
-
[34]
B., van Dokkum , P., & Mowla , L
Miller , T. B., van Dokkum , P., & Mowla , L. 2023, , 945, 155, 10.3847/1538-4357/acbc74
2023 doi
-
[35]
Z., & Tacchella , S
Mosleh , M., Hosseinnejad , S., Hosseini-ShahiSavandi , S. Z., & Tacchella , S. 2020, , 905, 170, 10.3847/1538-4357/abc7cc
2020 doi
-
[36]
2017, , 837, 2, 10.3847/1538-4357/aa5f14
Mosleh , M., Tacchella , S., Renzini , A., et al. 2017, , 837, 2, 10.3847/1538-4357/aa5f14
2017 doi
-
[37]
A., van Dokkum , P., Brammer , G
Mowla , L. A., van Dokkum , P., Brammer , G. B., et al. 2019, , 880, 57, 10.3847/1538-4357/ab290a
2019 doi
-
[38]
H., & Ostriker , J
Naab , T., Johansson , P. H., & Ostriker , J. P. 2009, , 699, L178, 10.1088/0004-637X/699/2/L178
2009 doi
-
[39]
B., Ellis , R
Newman , A. B., Ellis , R. S., Bundy , K., & Treu , T. 2012, , 746, 162, 10.1088/0004-637X/746/2/162
2012 doi
-
[40]
G., Hong , Y
Patel , S. G., Hong , Y. X., Quadri , R. F., Holden , B. P., & Williams , R. J. 2017, , 839, 127, 10.3847/1538-4357/aa6bf4
2017 doi
-
[41]
G., van Dokkum , P
Patel , S. G., van Dokkum , P. G., Franx , M., et al. 2013, , 766, 15, 10.1088/0004-637X/766/1/15
2013 doi
-
[42]
M., McAlpine , S., Trayford , J
Pawlik , M. M., McAlpine , S., Trayford , J. W., et al. 2019, Nature Astronomy, 3, 440, 10.1038/s41550-019-0725-z
2019 doi
-
[43]
Y., Ho , L
Peng , C. Y., Ho , L. C., Impey , C. D., & Rix , H.-W. 2002, , 124, 266, 10.1086/340952
2002 doi
-
[44]
J., Kova c , K., et al
Peng , Y.-j., Lilly , S. J., Kova c , K., et al. 2010, , 721, 193, 10.1088/0004-637X/721/1/193
2010 doi
-
[45]
M., Calvi , R., Bindoni , D., et al
Poggianti , B. M., Calvi , R., Bindoni , D., et al. 2013, in The Intriguing Life of Massive Galaxies, ed. D. Thomas , A. Pasquali , & I. Ferreras , Vol. 295, 151--154, 10.1017/S1743921313004547
2013 doi
-
[47]
Rix , H.-W., & Rieke , M. J. 1993, , 418, 123, 10.1086/173376
1993 doi
-
[48]
2022, , 940, 135, 10.3847/1538-4357/ac9a48
Santini , P., Castellano , M., Fontana , A., et al. 2022, , 940, 135, 10.3847/1538-4357/ac9a48
2022 doi
-
[49]
S \'e rsic , J. L. 1963, Boletin de la Asociacion Argentina de Astronomia La Plata Argentina, 6, 41
1963
-
[50]
A., Kriek , M., Price , S
Suess , K. A., Kriek , M., Price , S. H., & Barro , G. 2019 a , , 877, 103, 10.3847/1538-4357/ab1bda
2019 doi
-
[51]
2019 b , , 885, L22, 10.3847/2041-8213/ab4db3
---. 2019 b , , 885, L22, 10.3847/2041-8213/ab4db3
2019 doi
- [52]
-
[53]
A., Bezanson , R., Nelson , E
Suess , K. A., Bezanson , R., Nelson , E. J., et al. 2022, arXiv e-prints, arXiv:2207.10655. 2207.10655
2022 arXiv
- [54]
-
[55]
J., et al
Szomoru , D., Franx , M., Bouwens , R. J., et al. 2011, , 735, L22, 10.1088/2041-8205/735/1/L22
2011 doi
-
[56]
G., et al
Szomoru , D., Franx , M., van Dokkum , P. G., et al. 2013, , 763, 73, 10.1088/0004-637X/763/2/73
2013 doi
-
[57]
2010, , 714, L244, 10.1088/2041-8205/714/2/L244
---. 2010, , 714, L244, 10.1088/2041-8205/714/2/L244
2010 doi
-
[58]
R., Romanowsky , A
Tortora , C., Napolitano , N. R., Romanowsky , A. J., et al. 2011, , 418, 1557, 10.1111/j.1365-2966.2011.19438.x
2011
-
[59]
Trujillo , I., & Aguerri , J. A. L. 2004, , 355, 82, 10.1111/j.1365-2966.2004.08292.x
2004
-
[60]
2006 a , , 373, L36, 10.1111/j.1745-3933.2006.00238.x
Trujillo , I., Feulner , G., Goranova , Y., et al. 2006 a , , 373, L36, 10.1111/j.1745-3933.2006.00238.x
2006
-
[61]
M., Rudnick , G., et al
Trujillo , I., F \"o rster Schreiber , N. M., Rudnick , G., et al. 2006 b , , 650, 18, 10.1086/506464
2006 doi
-
[62]
2013, , 771, 85, 10.1088/0004-637X/771/2/85
van de Sande , J., Kriek , M., Franx , M., et al. 2013, , 771, 85, 10.1088/0004-637X/771/2/85
2013 doi
-
[63]
P., Zirm , A
van der Wel , A., Holden , B. P., Zirm , A. W., et al. 2008, , 688, 48, 10.1086/592267
2008 doi
-
[64]
P., Bell , E
van der Wel , A., Rix , H.-W., Holden , B. P., Bell , E. F., & Robaina , A. R. 2009, , 706, L120, 10.1088/0004-637X/706/1/L120
2009 doi
-
[65]
G., et al
van der Wel , A., Franx , M., van Dokkum , P. G., et al. 2014, , 788, 28, 10.1088/0004-637X/788/1/28
2014 doi
-
[66]
2024, , 960, 53, 10.3847/1538-4357/ad02ee
van der Wel , A., Martorano , M., H \"a u ler , B., et al. 2024, , 960, 53, 10.3847/1538-4357/ad02ee
2024 doi
-
[67]
2021, , 923, 43, 10.3847/1538-4357/ac2a30
van Dokkum , P., & Conroy , C. 2021, , 923, 43, 10.3847/1538-4357/ac2a30
2021 doi
-
[68]
G., Franx , M., Kriek , M., et al
van Dokkum , P. G., Franx , M., Kriek , M., et al. 2008, , 677, L5, 10.1086/587874
2008 doi
-
[69]
G., Whitaker , K
van Dokkum , P. G., Whitaker , K. E., Brammer , G., et al. 2010, , 709, 1018, 10.1088/0004-637X/709/2/1018
2010 doi
-
[70]
2023, , 944, L58, 10.3847/2041-8213/acba99
Wang , B., Leja , J., Bezanson , R., et al. 2023, , 944, L58, 10.3847/2041-8213/acba99
2023 doi
-
[71]
R., Kauffmann , O
Weaver , J. R., Kauffmann , O. B., Ilbert , O., et al. 2022, , 258, 11, 10.3847/1538-4365/ac3078
2022 doi
- [72]
-
[73]
R., Davidzon , I., Toft , S., et al
Weaver , J. R., Davidzon , I., Toft , S., et al. 2023 b , , 677, A184, 10.1051/0004-6361/202245581
2023 doi
-
[74]
R., Cutler , S
Weaver , J. R., Cutler , S. E., Pan , R., et al. 2024, VizieR Online Data Catalog: The UNCOVER phot. catalog of A2744 wiht HST+JWST (Weaver+, 2024) , VizieR On-line Data Catalog: J/ApJS/270/7. Originally published in: 2024ApJS..270....7W
2024
-
[75]
2015, , 449, 361, 10.1093/mnras/stv303
Wellons , S., Torrey , P., Ma , C.-P., et al. 2015, , 449, 361, 10.1093/mnras/stv303
2015 doi
-
[76]
E., van Dokkum , P
Whitaker , K. E., van Dokkum , P. G., Brammer , G., & Franx , M. 2012, , 754, L29, 10.1088/2041-8205/754/2/L29
2012 doi
-
[77]
E., van Dokkum , P
Whitaker , K. E., van Dokkum , P. G., Brammer , G., et al. 2013, , 770, L39, 10.1088/2041-8205/770/2/L39
2013 doi
-
[78]
J., Xia , X., & Deng , Z
Wu , H., Shao , Z., Mo , H. J., Xia , X., & Deng , Z. 2005, , 622, 244, 10.1086/427821
2005 doi
-
[79]
2020, , 888, 77, 10.3847/1538-4357/ab5fd9
Wu , P.-F., van der Wel , A., Bezanson , R., et al. 2020, , 888, 77, 10.3847/1538-4357/ab5fd9
2020 doi
-
[80]
J., Hayward , C
Wuyts , S., Cox , T. J., Hayward , C. C., et al. 2010, , 722, 1666, 10.1088/0004-637X/722/2/1666
2010 doi
-
[81]
2009, , 400, 1181, 10.1111/j.1365-2966.2009.15528.x
Zibetti , S., Charlot , S., & Rix , H.-W. 2009, , 400, 1181, 10.1111/j.1365-2966.2009.15528.x
2009
-
[82]
, " * write output.state after.block = add.period write newline
ENTRY address archivePrefix author booktitle chapter doi edition editor eprint howpublished institution journal key month number organization pages publisher school series title misctitle type volume year version url label extra.label sort.label short.list INTEGERS output.stat...
-
[83]
write newline
" write newline "" before.all 'output.state := FUNCTION format.url url empty "" new.block "" url * "" * if FUNCTION format.eprint eprint empty "" archivePrefix empty "" archivePrefix "arXiv" = new.block " " eprint * " " * new.block " " eprint * " " * if if if FUNCTION format.d...
-
[84]
,# (7),01444 '9=82<.342C 2! !22222222222222222222222222222222222222222222222222
thebibliography [1] 20pt to REFERENCES 6pt =0pt -12pt 10pt plus 3pt =0pt =0pt =1pt plus 1pt =0pt =0pt -12pt =13pt plus 1pt =20pt =13pt plus 1pt \@M =10000 =-1.0em =0pt =0pt 0pt =0pt =1.0em @enumiv\@empty 10000 10000 `\.\@m \@noitemerr \@latex@warning Empty `thebibliography' en...
2021 arXiv
Reviewed August 10, 2026 · model on record in the stance chip above.
Discussion (0). Continue with ORCID to comment.