REVIEW 3 major objections 4 minor 97 references
CECILIA: Ultra-Deep Rest-Optical Spectra of Faint Galaxies at Cosmic Noon
T0 review · 3 major / 4 minor · reviewed 2026-08-06 · deepseek-v4-flash
Pith's one-line read Ultra-deep JWST spectra of nine faint z≈2.5 galaxies show low star-formation rates and low metallicities, with two Lyα emitters whose very low [OIII]/Hβ and [NII]/Hα ratios match the predicted turnover at extremely low oxygen abundance.
desk verdict Genuinely new NIRSpec data on ultra-faint z~2.5 galaxies, with a careful reduction; the very-low-metallicity turnover claim for two sources is plausible but not uniquely constrained by the data. 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 argument hinges on rest-optical emission-line ratio diagrams—the N2, S2, and O1 BPT planes—that plot O3 ≡ log([O III] λ5007/Hβ) against N2 ≡ log([N II] λ6583/Hα), S2 ≡ log([S II] λλ6717,6731/Hα), or O1 ≡ log([O I] λ6300/Hα). These diagrams separate star-forming galaxies from AGN and, within the star-forming locus, track gas-phase metallicity. The paper interprets its points with a grid of photoionization models computed with a synthetic stellar population at stellar metallicity $Z_* = 0.001$, gas density $n_H = 300$ cm$^{-3}$, ionization parameters log U from −3.0 to −1.5, and nebular metallicities $Z_{\rm neb}/Z_\odot$ from 0.05 to 0.70, plus an empirical N/O–O/H scaling $\log({\rm N/O}) = 1.64\log({\rm O/H}) - 0.86$. The grid predicts that O3 rises as metallicity falls, peaks near 12+log(O/H) ≈ 8.0, and then turns over and declines at even lower oxygen abundances because the [O III] emissivity drops; the paper argues that NB2089 and NB2875 sit on that low-metallicity declining branch, while the stacked and other individual points lie near the peak.
What would settle it
Measure the temperature-sensitive auroral line [O III] λ4363 (or [N II] λ5755) in NB2089 and NB2875 to obtain direct electron-temperature oxygen abundances; if 12+log(O/H) for either galaxy is at or above about 8.0, the turnover interpretation of their low [OIII]/Hβ fails.
Extended reading notes
Core claim
The paper reports the most sensitive rest-optical spectra of individual faint galaxies at z~2.5 to date: nine low-luminosity systems from the CECILIA program, built from about 29.5 hours of G235M/F170LP and 1 hour of G395M/F290LP NIRSpec observations. It finds star-formation rates of 0.63–5.43 $M_\odot$ yr$^{-1}$, dust reddening $E(B-V)$ between 0.05 and 0.95, and electron densities below ~200 cm$^{-3}$. Emission-line diagnostics place the sample at low [NII]/Hα and high [OIII]/Hβ, corresponding to metallicities 12+log(O/H) ≲ 8.0, and the paper provides the first O1-BPT constraints in such faint high-redshift galaxies. The standout claim is that two Lyα emitters show low [OIII]/Hβ despite very high Lyα equivalent widths (73 and 320 Å) and very low [NII]/Hα upper limits; in the adopted photoionization models this combination is the signature of the O3 turnover at very low metallicity, with 12+log(O/H) ≲ 7.6, and comparison with Te-based samples suggests they are more metal-poor than the most metal-poor galaxy in a z=2–6 comparison sample.
Load-bearing premise
The metallicity interpretation rests on the adopted photoionization model grid and an empirical nitrogen-to-oxygen scaling, and if either does not describe these galaxies, low [OIII]/Hβ would not necessarily mean very low oxygen abundance.
Editorial extensions
If this is right
- Faint Lyα-selected galaxies at z≈2–3 can be studied galaxy by galaxy, so the scatter in their star-formation rates, dust content, and ionization conditions becomes measurable rather than being averaged away in stacked spectra.
- The two candidate turnover objects imply that O3-based selection, as used in some high-redshift analog and Lyman-continuum-leaker searches, systematically excludes the lowest-metallicity emitters; surveys should add complementary diagnostics such as N2 and O32.
- The first O1-BPT constraints are consistent with star formation, and the upper limits leave room for shock-heated gas, which deeper [O I] measurements could confirm or exclude.
- Because these galaxies have masses below $10^9\,M_\odot$ and star-formation rates of roughly 1–5 $M_\odot$ yr$^{-1}$, they are closer analogs to reionization-era galaxies than the brighter galaxies in existing Cosmic Noon samples.
Reading between the lines
- A direct Te-based abundance measurement of NB2089 or NB2875 would settle whether the O3 turnover is real; if the adopted nitrogen-to-oxygen scaling is wrong for these galaxies, their inferred oxygen abundances could be substantially higher.
- The apparent correlation between E(B-V) and star-formation rate in the sample may be partly induced by deriving both quantities from the same Hα/Hβ pair; an independent star-formation estimate from the UV continuum or SED fitting would test this.
- If the turnover interpretation holds, the O32 ratio ([OIII]/[OII]) should rise monotonically for these two galaxies even as O3 falls, providing a check that does not require auroral lines.
- The two serendipitous detections hint that ultra-deep MSA observations of faint targets will routinely uncover offset companions at similar redshifts, enlarging faint-galaxy samples without additional observing time.
Editorial analysis
A structured set of objections, weighed in public.
Referee Report
Summary. The paper presents ultra-deep JWST/NIRSpec rest-optical spectroscopy of nine faint, low-mass galaxies at z~2-3 from the CECILIA program, including narrowband-selected LAEs, faint LBGs, and two serendipitous sources. It measures Balmer decrements, dust-corrected H-alpha star formation rates, [S II] electron densities, and emission-line ratios, and places the galaxies on N2-, S2-, and O1-BPT diagrams. The samples are interpreted with Cloudy/BPASS photoionization models and compared to Te-based metallicity samples. The headline claims are that these are the most sensitive rest-optical spectra of individual faint galaxies at this epoch, that the galaxies are low-mass and mostly low-metallicity (12+log(O/H)~8.0), and that two LAEs (NB2089, NB2875) show low [O III]/H-beta with very low [N II]/H-alpha upper limits, consistent with a predicted turnover in O3 at metallicities below ~0.1 Z_sun.
Significance. If the central interpretation holds, the paper provides a valuable anchor for the faint end of the z~2-3 galaxy population: individual, not stacked, measurements of nine extremely faint sources, with Monte Carlo and bootstrap uncertainty estimates, public data through MAST, and first [O I]-BPT constraints in this regime. The comparison of CECILIA-faint galaxies with T16, Sanders+24, and Bian+18 is useful and goes beyond simply reporting line fluxes. However, the most novel and heavily advertised result, the very-low-metallicity turnover in NB2089 and NB2875, rests on upper limits and a model grid that does not exclude an alternative high-ionization branch; the paper's own conclusions overstate the evidence for 12+log(O/H) << 8. The descriptive measurements are careful, but the interpretive claim needs either additional diagnostics or substantial reframing.
major comments (3)
- [§4.1, Fig. 9, and §5 item 4] The claim that NB2089 and NB2875 are in the predicted very-low-metallicity turnover regime (Z_neb/Z_sun < 0.1, 12+log(O/H) << 8) is not uniquely supported by the data. For both galaxies, [N II]/H-alpha and [S II]/H-alpha are only 2-sigma upper limits (Table 3), and no O32 or [S II]-based density diagnostic is available. The Cloudy/BPASS grid in Fig. 9 is truncated at log U = -1.5, so the high-ionization branch is not shown. With the very hard Z*=0.001 BPASS spectrum, [O III]/H-beta can also decline at sufficiently high ionization parameter when O++ is further ionized to O3+, while N+ and S+ are suppressed; a galaxy at Z_neb ~ 0.2-0.3 Z_sun could then mimic the observed low O3, low N2, and low S2 without being extremely metal-poor. The abstract and Section 5 item 4 state the very-low-metallicity interpretation as the likely explanation, which overreaches the evidence. I recommend either expanding the model grid to higher log U and showing that the high-U branch is excluded by the limits, obtaining a diagnostic that separates the branches, or softening the claim to explicitly present the high-U degeneracy.
- [§2.3 and Table 3] The flux-correction systematics are not propagated into the line fluxes used for the diagnostic diagrams. Section 2.3 states that the flux correction functions vary in absolute scaling by a factor of ~2 at H-alpha and produce ~10% uncertainty in the H-alpha/H-beta ratio, and that these systematics are 'not included in the uncertainties quoted for the individual line flux measurements.' Table 3 confirms that only statistical uncertainties are shown. Since the N2 upper limits for NB2089 and NB2875 (e.g., [N II]/H-alpha < 0.06 and < 0.12) are comparable to or smaller than the plausible wavelength-dependent calibration uncertainty, the central turnover interpretation is sensitive to this systematic. The paper says the systematics are included in derived quantities such as SFR and E(B-V), but it does not specify how; I ask the authors to state the propagation procedure explicitly and to quantify the impact of the flux-correction uncertainty on the BPT positions and limits.
- [§3.4.1 and Table 1] Three of the nine sample galaxies (fBM40, fBM47, fC23) do not have their [O III]/H-beta and [N II]/H-alpha ratios measured from the new NIRSpec data, because these lines fall outside the NIRSpec coverage at their redshifts; their E(B-V) and SFR values are also taken from earlier Keck/MOSFIRE measurements (S17). The paper is clear about this in Section 3.1 and 3.4.1, but the abstract's general claim of 'the most sensitive rest-optical spectra of individual faint galaxies at this epoch to date' and the sample framing in the introduction could leave the impression that all nine galaxies have uniform NIRSpec-based rest-optical measurements. I recommend making the heterogeneous origin of the fLBG values explicit in the abstract or in the sample-summary table, and flagging which points in Figures 5-8 are from Keck/MOSFIRE rather than NIRSpec.
minor comments (4)
- [§4.2 and Fig. 10] The sentence stating that NB2089 and NB2875 'exhibit lower O3 ratios and lower N2 and S2 limits than even the most metal-poor galaxy in the Sanders et al. (2024) sample' should be reworded: upper limits do not establish that the actual ratios are lower than a detection in another sample, only that the limits are lower. This distinction matters for the claim of a population offset.
- [§2.3] The phrase 'the absolute flux calibration for the serendipitous sources is uncertain since their centering in the slit is unknown' is important, but no quantitative estimate of this uncertainty is given for the derived quantities. A brief quantitative statement would help the reader assess the robustness of the reported E(B-V) and SFR values for C31b and BX587b.
- [§3.2 and Eq. (1)] The SFR calibration is a single BPASS-based, metal-poor conversion applied to all sources, including the fLBGs and serendipitous sources. The paper correctly notes that this may not apply to more metal-rich populations, but it would be useful to state explicitly what change in the reported median SFR would result from using the Kennicutt (1998) calibration, since the abstract's 'SFRs systematically below continuum-selected galaxies' is calibration-dependent.
- [Throughout] There are several small typographical and formatting issues: 'S2-NPT' should be 'S2-BPT' in the Section 4.2 text; 'in in Figure 10' has a duplicated 'in'; and the Table 3 note should clarify whether the quoted [O III]/H-beta values in Figures 6-8 are observed or dust-corrected, given that the table says the fluxes are not dust-corrected.
Circularity Check
No significant circularity: the CECILIA measurements are independent, the Cloudy/BPASS model grid is not fit to the target data, and the very-low-metallicity turnover claim is supported by the paper's own forward models plus external Te-based comparison samples.
full rationale
The derivation chain is: measured line fluxes -> Balmer decrement E(B-V) -> H-alpha SFRs -> [S II] densities -> BPT ratios -> comparison to photoionization models and Te-based samples. Each step uses independent inputs: an assumed intrinsic Balmer ratio and Cardelli extinction law; an externally calibrated SFR relation from Korhonen Cuestas et al. 2025 (based on BPASS models, not fitted to these nine galaxies); a fixed Te=10^4 K for [S II]; and a Cloudy/BPASS grid with fixed Z*=0.001, n_H=300 cm^-3, log U=-3.0 to -1.5, and Z_neb=0.05-0.70 Zsun. The grid is not tuned to the CECILIA data; the two low-O3 galaxies are simply overplotted and read off the model tracks. The 'predicted turnover' in O3 at low metallicity is reproduced by the paper's own Figure 9 forward models, not merely imported from T16, so the same-group citations are not load-bearing. External anchors also exist: the T16 stack, R24's D40 with 12+log(O/H)=8.07, and Sanders et al. 2024 Te-based galaxies. The paper explicitly acknowledges model dependencies (n_H=100-200 cm^-3 shifts O3 slightly; direct Te-based abundances are still needed; the S17 N/O scaling is adopted) and even warns that the E(B-V)-SFR correlation may partly reflect the common H-alpha/H-beta input. These are ordinary model-assumption and measurement caveats, not definitional circularity, fitted-input-as-prediction, or a self-citation chain that forces the central result.
Assumptions & free parameters
free parameters (5)
- Average flux correction function f_corr(λ) =
factor ~2 scaling at Hα; ~10% Hα/Hβ shape uncertainty
- SFR calibration constant =
10^-41.68 L_Hα/(erg/s) in M_sun/yr
- CLOUDY grid gas density =
n_H = 300 cm^-3
- N/O vs O/H scaling =
log(N/O)=1.64 log(O/H)-0.86, floor -1.5
- Electron temperature for density estimate =
T_e = 10^4 K
assumptions (4)
- domain assumption Intrinsic Hα/Hβ = 2.89 and the Cardelli et al. (1989) extinction law with R_V = 3.1 apply to these galaxies
- domain assumption Local-universe BPT classification curves (Kauffmann 2003, Kewley 2001/2006) remain meaningful at z~2.5 after the known high-z offset
- domain assumption The serendipitous sources are physically separate galaxies from their primary targets
- domain assumption The custom background subtraction and bar-shadow correction do not bias emission-line fluxes
Cite this review
Pith. "Pith review of CECILIA: Ultra-Deep Rest-Optical Spectra of Faint Galaxies at Cosmic Noon." pith.science (2026). https://pith.science/paper/KDPXZPQL
@misc{pith2026250722237,
author = {Pith},
title = {Pith review of: CECILIA: Ultra-Deep Rest-Optical Spectra of Faint Galaxies at Cosmic Noon},
year = {2026},
howpublished = {\url{https://pith.science/paper/KDPXZPQL}},
note = {Machine review of arXiv:2507.22237}
}
abstract
Intrinsically faint galaxies at $z\sim2-3$ offer critical insights into early galaxy formation, tracing low-metallicity, low-mass systems during Cosmic Noon and serving as analogs to reionization-era galaxies. We present ultra-deep JWST/NIRSpec spectroscopy of nine low-luminosity galaxies ($-17 \lesssim M_{\rm UV} \lesssim -20$, $M_\star \lesssim 10^9\,M_\odot$) at $z\sim2.5$ from the CECILIA program, with $\sim$29.5 hr in G235M/F170LP and 1 hr in G395M/F290LP. Our sample includes four LAEs, three rest-UV color-selected galaxies, and two serendipitous detections -- providing the most sensitive rest-optical spectra of individual faint galaxies at this epoch to date. Balmer-line measurements reveal low SFRs ($0.63 < \mathrm{SFR}/(M_\odot\,\mathrm{yr}^{-1}) < 5.43$) and a broad range of dust reddening ($0 < E(B-V) < 1$), with SFRs systematically below those of continuum-selected galaxies. Electron densities are low ($n_e \lesssim 200$cm$^{-3}$), and emission-line diagnostics indicate low [NII]/H$\alpha$, high [OIII]/H$\beta$, suggesting metallicities $12+\log({\rm O/H})\lesssim8.0$. We also present the first O1-BPT constraints in such faint high-redshift galaxies. Notably, two galaxies show low [OIII]/H$\beta$ despite high Ly$\alpha$ EWs and very low [NII]/H$\alpha$, consistent with the predicted turnover in this ratio at very low metallicities -- highlighting the need for complementary diagnostics (e.g., N2, O32) to identify metal-poor systems. Direct $T_e$-based abundances and expanded samples are needed to further trace metallicity and ionization trends in low-mass galaxies.
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Works this paper leans on
-
[1]
Abazajian , K. N., Adelman-McCarthy , J. K., Ag \"u eros , M. A., et al. 2009, , 182, 543, 10.1088/0067-0049/182/2/543
-
[2]
Andrews , B. H., & Martini , P. 2013, , 765, 140, 10.1088/0004-637X/765/2/140
-
[3]
Asplund , M., Amarsi , A. M., & Grevesse , N. 2021, , 653, A141, 10.1051/0004-6361/202140445
-
[4]
Baldwin , J. A., Phillips , M. M., & Terlevich , R. 1981, , 93, 5, 10.1086/130766
doi:10.1086/130766 1981
-
[5]
Bian , F., Kewley , L. J., & Dopita , M. A. 2018, , 859, 175, 10.3847/1538-4357/aabd74
-
[6]
2022 a , msaexp: NIRSpec analyis tools , 0.3.4, Zenodo, Zenodo, 10.5281/zenodo.7299500
Brammer , G. 2022 a , msaexp: NIRSpec analyis tools , 0.3.4, Zenodo, Zenodo, 10.5281/zenodo.7299500
-
[7]
2022 b , msaexp: NIRSpec analyis tools , 0.3.4, Zenodo, Zenodo, 10.5281/zenodo.7313329
---. 2022 b , msaexp: NIRSpec analyis tools , 0.3.4, Zenodo, Zenodo, 10.5281/zenodo.7313329
-
[8]
2023 a , grizli , 1.8.2, Zenodo, Zenodo, 10.5281/zenodo.7712834
---. 2023 a , grizli , 1.8.2, Zenodo, Zenodo, 10.5281/zenodo.7712834
Show all 97 references
-
[9]
2023 b , grizli , 1.9.11, Zenodo, Zenodo, 10.5281/zenodo.1146904
---. 2023 b , grizli , 1.9.11, Zenodo, Zenodo, 10.5281/zenodo.1146904
2023 doi
- [10]
-
[11]
2023, JWST Calibration Pipeline, 1.12.5, Zenodo, 10.5281/zenodo.10022973
Bushouse, H., Eisenhamer, J., Dencheva, N., et al. 2023, JWST Calibration Pipeline, 1.12.5, Zenodo, 10.5281/zenodo.10022973
2023 doi
-
[12]
J., Saxena , A., Bunker , A
Cameron , A. J., Saxena , A., Bunker , A. J., et al. 2023, , 677, A115, 10.1051/0004-6361/202346107
2023 doi
-
[13]
A., Clayton , G
Cardelli , J. A., Clayton , G. C., & Mathis , J. S. 1989, , 345, 245, 10.1086/167900
1989 doi
-
[14]
C., Cullen , F., McLure , R
Carnall , A. C., Cullen , F., McLure , R. J., et al. 2024, , 534, 325, 10.1093/mnras/stae2092
2024 doi
-
[15]
2025, arXiv e-prints, arXiv:2504.03839, 10.48550/arXiv.2504.03839
Cataldi , E., Belfiore , F., Curti , M., et al. 2025, arXiv e-prints, arXiv:2504.03839, 10.48550/arXiv.2504.03839
2025 doi
- [16]
-
[17]
L., et al
Clarke , L., Shapley , A., Sanders , R. L., et al. 2023, , 957, 81, 10.3847/1538-4357/acfedb
2023 doi
-
[18]
J., Dunlop , J
Cullen , F., McLure , R. J., Dunlop , J. S., et al. 2019, , 487, 2038, 10.1093/mnras/stz1402
2019 doi
- [19]
-
[20]
2016, , 585, A51, 10.1051/0004-6361/201527046
de Barros , S., Vanzella , E., Amor \' n , R., et al. 2016, , 585, A51, 10.1051/0004-6361/201527046
2016 doi
-
[21]
2016, , 828, 71, 10.3847/0004-637X/828/2/71
Dijkstra , M., Gronke , M., & Venkatesan , A. 2016, , 828, 71, 10.3847/0004-637X/828/2/71
2016 doi
-
[22]
E., Topping , M
Du , X., Shapley , A. E., Topping , M. W., et al. 2021, , 920, 95, 10.3847/1538-4357/ac1273
2021 doi
-
[23]
J., Porter , R
Ferland , G. J., Porter , R. L., van Hoof , P. A. M., et al. 2013, , 49, 137. 1302.4485
2013 arXiv
-
[24]
J., Tang , M., Robertson , B
Fletcher , T. J., Tang , M., Robertson , B. E., et al. 2019, , 878, 87, 10.3847/1538-4357/ab2045
2019 doi
-
[25]
2022, , 926, 80, 10.3847/1538-4357/ac43b8
Garg , P., Narayanan , D., Byler , N., et al. 2022, , 926, 80, 10.3847/1538-4357/ac43b8
2022 doi
-
[26]
2019, , 887, 168, 10.3847/1538-4357/ab5713
Gburek , T., Siana , B., Alavi , A., et al. 2019, , 887, 168, 10.3847/1538-4357/ab5713
2019 doi
-
[27]
2011, , 733, 114, 10.1088/0004-637X/733/2/114
Guaita , L., Acquaviva , V., Padilla , N., et al. 2011, , 733, 114, 10.1088/0004-637X/733/2/114
2011 doi
-
[28]
R., Millman , K
Harris , C. R., Millman , K. J., van der Walt , S. J., et al. 2020, , 585, 357, 10.1038/s41586-020-2649-2
2020 doi
- [29]
-
[30]
2017, , 845, L16, 10.3847/2041-8213/aa8401
Hu , W., Wang , J., Zheng , Z.-Y., et al. 2017, , 845, L16, 10.3847/2041-8213/aa8401
2017 doi
-
[31]
Hunter , J. D. 2007, Computing in Science and Engineering, 9, 90, 10.1109/MCSE.2007.55
2007 doi
-
[32]
Ilyushin , B. B. 2024, Journal of Engineering Thermophysics, 33, 1, 10.1134/S1810232824010016
2024 doi
-
[33]
I., Orlitov \'a , I., Schaerer , D., et al
Izotov , Y. I., Orlitov \'a , I., Schaerer , D., et al. 2016, , 529, 178, 10.1038/nature16456
2016 doi
-
[34]
I., Schaerer , D., Worseck , G., et al
Izotov , Y. I., Schaerer , D., Worseck , G., et al. 2018, , 474, 4514, 10.1093/mnras/stx3115
2018 doi
-
[35]
M., White , S
Kauffmann , G., Heckman , T. M., White , S. D. M., et al. 2003, , 341, 33, 10.1046/j.1365-8711.2003.06291.x
2003
-
[36]
1998, , 36, 189, 10.1146/annurev.astro.36.1.189
Kennicutt , Robert C., J. 1998, , 36, 189, 10.1146/annurev.astro.36.1.189
1998 doi
-
[37]
J., Dopita , M
Kewley , L. J., Dopita , M. A., Sutherland , R. S., Heisler , C. A., & Trevena , J. 2001, , 556, 121, 10.1086/321545
2001 doi
-
[38]
J., Groves , B., Kauffmann , G., & Heckman , T
Kewley , L. J., Groves , B., Kauffmann , G., & Heckman , T. 2006, , 372, 961, 10.1111/j.1365-2966.2006.10859.x
2006
-
[39]
J., Nicholls , D
Kewley , L. J., Nicholls , D. C., & Sutherland , R. S. 2019, , 57, 511, 10.1146/annurev-astro-081817-051832
2019 doi
- [40]
-
[41]
J., Ilbert , O., et al
Laigle , C., McCracken , H. J., Ilbert , O., et al. 2016, , 224, 24, 10.3847/0067-0049/224/2/24
2016 doi
-
[42]
R., Ji , X., Belfiore , F., et al
Law , D. R., Ji , X., Belfiore , F., et al. 2021, , 915, 35, 10.3847/1538-4357/abfe0a
2021 doi
-
[43]
2014, , 52, 415, 10.1146/annurev-astro-081811-125615
Madau , P., & Dickinson , M. 2014, , 52, 415, 10.1146/annurev-astro-081811-125615
2014 doi
-
[44]
V., Lewis , Z., Matthee , J., et al
Maseda , M. V., Lewis , Z., Matthee , J., et al. 2023, , 956, 11, 10.3847/1538-4357/acf12b
2023 doi
-
[45]
2016, , 828, 18, 10.3847/0004-637X/828/1/18
Masters , D., Faisst , A., & Capak , P. 2016, , 828, 18, 10.3847/0004-637X/828/1/18
2016 doi
-
[46]
2018, , 479, L34, 10.1093/mnrasl/sly093
Matthee , J., & Schaye , J. 2018, , 479, L34, 10.1093/mnrasl/sly093
2018 doi
-
[47]
2021, , 505, 1382, 10.1093/mnras/stab1304
Matthee , J., Sobral , D., Hayes , M., et al. 2021, , 505, 1382, 10.1093/mnras/stab1304
2021 doi
-
[48]
S., Steidel , C
McLean , I. S., Steidel , C. C., Epps , H. W., et al. 2012, in Society of Photo-Optical Instrumentation Engineers (SPIE) Conference Series, Vol. 8446, Ground-based and Airborne Instrumentation for Astronomy IV, ed. I. S. McLean , S. K. Ramsay , & H. Takami , 84460J, 10.1117/12.924794
2012 doi
-
[49]
2025, , 694, A59, 10.1051/0004-6361/202451695
Messa , M., Vanzella , E., Loiacono , F., et al. 2025, , 694, A59, 10.1051/0004-6361/202451695
2025 doi
-
[50]
2012, , 745, 12, 10.1088/0004-637X/745/1/12
Nakajima , K., Ouchi , M., Shimasaku , K., et al. 2012, , 745, 12, 10.1088/0004-637X/745/1/12
2012 doi
-
[51]
B., Cohen , J
Oke , J. B., Cohen , J. G., Carr , M., et al. 1995, , 107, 375, 10.1086/133562
1995 doi
-
[52]
E., & Ferland , G
Osterbrock , D. E., & Ferland , G. J. 2006, Astrophysics of gaseous nebulae and active galactic nuclei
2006
-
[53]
2014, , 797, 11, 10.1088/0004-637X/797/1/11
\"O stlin , G., Hayes , M., Duval , F., et al. 2014, , 797, 11, 10.1088/0004-637X/797/1/11
2014 doi
-
[54]
J., et al
Oteo , I., Sobral , D., Ivison , R. J., et al. 2015, , 452, 2018, 10.1093/mnras/stv1284
2015 doi
-
[55]
2011, , 743, 132, 10.1088/0004-637X/743/2/132
Pentericci , L., Fontana , A., Vanzella , E., et al. 2011, , 743, 132, 10.1088/0004-637X/743/2/132
2011 doi
- [56]
-
[57]
A., & Steidel , C
Reddy , N. A., & Steidel , C. C. 2009, , 692, 778, 10.1088/0004-637X/692/1/778
2009 doi
-
[58]
A., Shapley , A
Reddy , N. A., Shapley , A. E., Kriek , M., et al. 2020, , 902, 123, 10.3847/1538-4357/abb674
2020 doi
-
[59]
Rogers , N. S. J., Strom , A. L., Rudie , G. C., et al. 2024, , 964, L12, 10.3847/2041-8213/ad2f37
2024 doi
-
[60]
C., Steidel , C
Rudie , G. C., Steidel , C. C., Trainor , R. F., et al. 2012, , 750, 67, 10.1088/0004-637X/750/1/67
2012 doi
-
[61]
2020, , 892, 48, 10.3847/1538-4357/ab7a91
Runnholm , A., Hayes , M., Melinder , J., et al. 2020, , 892, 48, 10.3847/1538-4357/ab7a91
2020 doi
- [62]
-
[63]
L., Shapley , A
Sanders , R. L., Shapley , A. E., Topping , M. W., Reddy , N. A., & Brammer , G. B. 2023, , 955, 54, 10.3847/1538-4357/acedad
2023 doi
- [64]
-
[65]
L., Shapley , A
Sanders , R. L., Shapley , A. E., Kriek , M., et al. 2016, , 816, 23, 10.3847/0004-637X/816/1/23
2016 doi
-
[66]
L., Shapley , A
Sanders , R. L., Shapley , A. E., Reddy , N. A., et al. 2020, , 491, 1427, 10.1093/mnras/stz3032
2020 doi
-
[67]
L., Shapley , A
Sanders , R. L., Shapley , A. E., Jones , T., et al. 2021, , 914, 19, 10.3847/1538-4357/abf4c1
2021 doi
-
[68]
A., Stark , D
Schenker , M. A., Stark , D. P., Ellis , R. S., et al. 2012, , 744, 179, 10.1088/0004-637X/744/2/179
2012 doi
- [69]
-
[70]
E., Reddy , N
Shapley , A. E., Reddy , N. A., Kriek , M., et al. 2015, , 801, 88, 10.1088/0004-637X/801/2/88
2015 doi
-
[71]
E., Sanders , R
Shapley , A. E., Sanders , R. L., Shao , P., et al. 2019, , 881, L35, 10.3847/2041-8213/ab385a
2019 doi
-
[72]
E., Sanders , R., Berg , D., et al
Shapley , A. E., Sanders , R., Berg , D., et al. 2021, The AURORA Survey: First Direct Metallicity Calibrations at High Redshift , JWST Proposal. Cycle 1, ID. \#1914
2021
-
[73]
R., & Eldridge , J
Stanway , E. R., & Eldridge , J. J. 2018, , 479, 75, 10.1093/mnras/sty1353
2018 doi
-
[74]
P., Ellis , R
Stark , D. P., Ellis , R. S., Chiu , K., Ouchi , M., & Bunker , A. 2010, , 408, 1628, 10.1111/j.1365-2966.2010.17227.x
2010
-
[75]
P., Ellis , R
Stark , D. P., Ellis , R. S., & Ouchi , M. 2011, , 728, L2, 10.1088/2041-8205/728/1/L2
2011 doi
-
[76]
C., Adelberger , K
Steidel , C. C., Adelberger , K. L., Shapley , A. E., et al. 2003, , 592, 728, 10.1086/375772
2003 doi
-
[77]
C., Bogosavljevi \'c , M., Shapley , A
Steidel , C. C., Bogosavljevi \'c , M., Shapley , A. E., et al. 2018, , 869, 123, 10.3847/1538-4357/aaed28
2018 doi
-
[78]
C., Shapley , A
Steidel , C. C., Shapley , A. E., Pettini , M., et al. 2004, , 604, 534, 10.1086/381960
2004 doi
-
[79]
C., Strom , A
Steidel , C. C., Strom , A. L., Pettini , M., et al. 2016, , 826, 159, 10.3847/0004-637X/826/2/159
2016 doi
-
[80]
C., Rudie , G
Steidel , C. C., Rudie , G. C., Strom , A. L., et al. 2014, , 795, 165, 10.1088/0004-637X/795/2/165
2014 doi
-
[81]
L., Rudie , G
Strom , A. L., Rudie , G. C., Steidel , C. C., & Trainor , R. F. 2022, , 925, 116, 10.3847/1538-4357/ac38a3
2022 doi
-
[82]
L., Steidel , C
Strom , A. L., Steidel , C. C., Rudie , G. C., Trainor , R. F., & Pettini , M. 2018, , 868, 117, 10.3847/1538-4357/aae1a5
2018 doi
-
[83]
L., Steidel , C
Strom , A. L., Steidel , C. C., Rudie , G. C., et al. 2017, , 836, 164, 10.3847/1538-4357/836/2/164
2017 doi
-
[84]
L., Rudie , G
Strom , A. L., Rudie , G. C., Trainor , R. F., et al. 2023, , 958, L11, 10.3847/2041-8213/ad07dc
2023 doi
-
[85]
S., & Dopita , M
Sutherland , R. S., & Dopita , M. A. 2017, , 229, 34, 10.3847/1538-4365/aa6541
2017 doi
-
[86]
P., Chevallard , J., & Charlot , S
Tang , M., Stark , D. P., Chevallard , J., & Charlot , S. 2019, , 489, 2572, 10.1093/mnras/stz2236
2019 doi
-
[87]
W., Shapley , A
Topping , M. W., Shapley , A. E., Reddy , N. A., et al. 2020, , 499, 1652, 10.1093/mnras/staa2941
2020 doi
- [88]
-
[89]
F., Steidel , C
Trainor , R. F., Steidel , C. C., Strom , A. L., & Rudie , G. C. 2015, , 809, 89, 10.1088/0004-637X/809/1/89
2015 doi
-
[90]
F., Strom , A
Trainor , R. F., Strom , A. L., Steidel , C. C., & Rudie , G. C. 2016, , 832, 171, 10.3847/0004-637X/832/2/171
2016 doi
-
[91]
F., Strom , A
Trainor , R. F., Strom , A. L., Steidel , C. C., et al. 2019, , 887, 85, 10.3847/1538-4357/ab4993
2019 doi
-
[92]
A., Heckman , T
Tremonti , C. A., Heckman , T. M., Kauffmann , G., et al. 2004, , 613, 898, 10.1086/423264
2004 doi
-
[93]
Veilleux , S., & Osterbrock , D. E. 1987, , 63, 295, 10.1086/191166
1987 doi
-
[94]
2015, , 578, A7, 10.1051/0004-6361/201423978
Verhamme , A., Orlitov \'a , I., Schaerer , D., & Hayes , M. 2015, , 578, A7, 10.1051/0004-6361/201423978
2015 doi
-
[95]
E., et al
Virtanen , P., Gommers , R., Oliphant , T. E., et al. 2020, Nature Methods, 17, 261, 10.1038/s41592-019-0686-2
2020 doi
-
[96]
L., Shen , S.-Y., et al
Wang , L.-L., Luo , A. L., Shen , S.-Y., et al. 2018, , 474, 1873, 10.1093/mnras/stx2798
2018 doi
- [97]
Reviewed August 6, 2026 · model on record in the stance chip above.
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