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Closing in on Pop-III Stars: Constraints and Predictions Across the Spectrum

T0 review · 5 major / 7 minor · reviewed 2026-08-09 · deepseek-v4-flash

Pith's one-line read Combining UV luminosity functions, CMB optical depth, quasar absorption, and the X-ray background, the paper finds that current data only set upper limits on Population III formation, and predicts a distinctive global 21-cm absorption…

desk verdict Solid joint constraints on Pop-III, but the 21-cm 'distinctive region' claim needs reframing: it's an envelope comparison, not a detection argument. read the letter →

arxiv 2502.03525 v1 pith:7NQQUQRK submitted 2025-02-05 astro-ph.CO astro-ph.GAhep-ph

classification astro-ph.COastro-ph.GAhep-ph
keywords PopulationIIIstarsglobal21-cmsignalcosmicdawnreionizationUVluminosityfunctionX-raybackgroundstarformationratedensity
verification ladder T0 review T1 audit T2 compute T3 formal

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 paper asks whether the first generation of stars, Population III, can be seen indirectly in data we already have. It combines four high-redshift probes—UV luminosity functions, the CMB optical depth to reionization, hydrogen absorption lines in quasar spectra, and the soft cosmic X-ray background—to fit two minimal models: a universe with only Population II stars, and a universe where Population III stars form first and then give way to Population II. A single population fits all current data, so the paper can only set upper limits on how much Population III star formation and emission is allowed. After imposing those constraints, the paper computes the viable envelopes of the global 21-cm brightness temperature for both models and finds a region in the two-population parameter space whose signal cannot be produced by a single population. A measurement of a deep absorption feature at $z \gtrsim 15$ or an emission feature at $z \gtrsim 20$ in that region would be strong evidence for Population III stars at Cosmic Dawn.

What carries the argument

The central object is the global 21-cm brightness temperature $T_{21}(z)$, whose evolution is driven by three redshift-dependent inputs: the UV photon emissivity that drives the Ly-$\alpha$ coupling, the X-ray emissivity, and the neutral hydrogen fraction. The paper computes these from a fast semi-analytic Cosmic Dawn code, then maps the posterior samples of the astrophysical parameters into 95% confidence envelopes of $T_{21}$. The simplifying identity that makes the mapping parameter-free is Eq. (B4): the emissivity equals the star-formation-rate density times a baryon-normalized photon spectrum, valid when the emitting stars live less than about 4 million years. This is what lets the UV luminosity function, reionization, and X-ray background constraints carry directly into a 21-cm prediction. Inside the signal, the mechanism that creates the absorption feature is resonant Ly-$\alpha$ scattering, which couples the spin temperature to the gas kinetic temperature.

What would settle it

Measure the global 21-cm spectrum across $z \approx 15$–$30$ with sensitivity of a few mK. If the observed $T_{21}(z)$ at $z \gtrsim 15$ lies inside the 95% envelope of the single-population model—for example, no absorption feature deeper than that envelope—then the predicted distinctive two-population window is not realized, and the claim that such a signal would be a strong Population III indicator would be falsified.

Watch

Extended reading notes

Core claim

The central claim, stated on the paper's own terms, is that a global 21-cm signal in the distinctive region—roughly a deep absorption trough at $z \gtrsim 15$ or an emission feature at $z \gtrsim 20$—would be a strong indication that a second, earlier stellar population existed. The paper reaches this conclusion by constructing joint posterior distributions over two minimal models using UV luminosity functions, $\tau_e$, quasar absorption, and the soft X-ray background, finding reduced $\chi^2$ values near $0.64$–$0.72$ with no improvement when a second population is added. The two-population model's wider 21-cm envelope arises because Population III stars can form in small halos, produce early Ly-$\alpha$ coupling, and, in the most extreme allowed cases, add X-ray heating; the parameters $F_\star^{\rm III}$, $M_{\rm cut}^{\rm III}$, and $F_{\rm esc}^{\rm III}$ separate the distinctive signals. The paper's conclusion is therefore predictive: current data are compatible with no Population III, but a future global 21-cm measurement in that window would favor a two-population universe.

Load-bearing premise

The entire prediction rests on the assumption that Population III stars emit like stars that live only a few million years, which holds only if they are very massive (above roughly 50 solar masses); if the first stars were lighter on average or formed with a more ordinary spread of masses, the predicted 21-cm signal region could shrink or shift.

Editorial extensions

If this is right

  • A global 21-cm experiment that sees a deep absorption feature at $z \gtrsim 15$, or an emission feature at $z \gtrsim 20$, would rule out the single-population model and favor a universe with two stellar populations.
  • Because 21-cm data are not used as an input to the constraints, the predicted envelope is an independent, falsifiable target rather than a re-fitting of the same observations.
  • Improved measurements of the unresolved soft X-ray background, projected to improve by about two orders of magnitude with next-generation X-ray telescopes, would tighten the upper bound on Population III X-ray luminosity and shrink the distinguishable region.
  • Since the two-population fit does not improve the reduced $\chi^2$ over the single-population fit, all Population III properties are currently upper limits; the paper's contribution is bounding them, not detecting them.

Reading between the lines

Editorial extensions of the paper, not claims the author makes directly.

  • An extension the authors leave implicit: if the first stars formed with a less top-heavy initial mass function than assumed, the short-lifetime emissivity relation would break down and the distinctive 21-cm window would shrink or shift, as the paper's Appendix B notes.
  • The same envelope technique could be applied to any early-universe energy source, such as dark matter annihilation or exotic photon production, by swapping the emissivity inputs while keeping the 21-cm mapping fixed; the paper mentions new-physics applications but does not work them out.
  • Future 21-cm power-spectrum measurements could break the degeneracy between X-ray heating and Ly-$\alpha$ coupling that the global signal alone cannot, potentially sharpening the distinction between one- and two-population models.
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Editorial analysis

A structured set of objections, weighed in public.

Desk editor's note, referee report, and a circularity audit.

Referee Report

5 major / 7 minor

Summary. The paper constrains the properties of Pop-II and Pop-III stellar populations using high-redshift UV luminosity functions, the Planck optical depth to reionization, quasar absorption constraints on the neutral fraction at z~5.9, and the unresolved soft cosmic X-ray background. It finds that a single Pop-II population fits the current data well, yielding upper limits on Pop-III formation and emission. It then propagates the derived posteriors to predictions for the global 21-cm signal, showing that a two-population model permits a wider envelope of T21(z) and identifying a 'distinctive' parameter region where the two-population signal leaves the 95% envelope of the single-population model. The abstract and conclusions claim that a measurement of such a signal would be a strong indication of Pop-III stars at early times.

Significance. The paper's multi-observable constraint on Pop-III properties is useful and timely, and the analysis is transparent: Gaussian and one-sided likelihoods are defined in Appendix A, priors are listed in Table I, and the MCMC analysis is standard. A valuable strength is that the 21-cm signal is not included in the likelihood, so the distinctive-signal region is a genuine post-fit forecast rather than a fitted target. If the central claim were quantitatively established, the paper would provide a clear observational target for upcoming global 21-cm experiments. However, the central claim currently rests on envelope overlap rather than on a statistical model-selection calculation, and the forward model depends on an unreleased custom code and a short-lifetime emissivity approximation that is plausible but not fully robust.

major comments (5)
  1. [§III and Abstract] The claim that a measurement in the 'distinctive' region 'would be a strong indication for the presence of Pop-III stars' is not supported by the analysis. The blue region in Fig. 4 is defined as two-population models whose T21(z) exits the single-population 95% envelope at some redshift, but the envelope is pointwise in z and does not account for correlated deviations across redshift, parameter covariance within each model, or measurement noise and foreground residuals. A curve that pokes outside the single-population 95% envelope at one frequency can still be a plausible single-population realization once noise and systematics are included. The paper never computes a likelihood ratio, Bayes factor, or posterior predictive probability for a future measurement under the two competing models. The abstract and Sec. IV bullet should either be softened to 'suggestive' or supported by a quantitative forecast that includes a noise model.
  2. [§III, Fig. 4 (left)] The paper concedes that 'the most extreme features in the left panel of Fig. 4 correspond to models in which the SFR of Pop-III stars dominates over that of Pop-II stars down to low redshift. While these models are not definitively excluded, they are generally disfavored by various astrophysical considerations.' If the distinctive region is populated substantially by such physically disfavored models, the forward-looking claim is correspondingly weakened. The paper should quantify the fraction of the blue region in Fig. 4 (right) that lies beyond the dashed-line boundary (i.e., where Pop-III SFR exceeds Pop-II below z=10), and show how the extent of the distinctive region changes when those models are excluded. Without this, it is unclear whether the claimed 'strong indication' is robust to astrophysical priors that the authors themselves consider reasonable.
  3. [Appendix B, Eq. (B4)] The instantaneous-emissivity assumption in Eq. (B4) is load-bearing for the 21-cm envelopes: it requires Pop-III stellar lifetimes below about 4 Myr, i.e., a top-heavy IMF with masses above ~50 solar masses. The authors acknowledge in Appendix B that recent simulations suggest clustered Pop-III formation and that a Salpeter-like IMF would break this approximation, but they do not test the sensitivity of the distinctive-signal region to this assumption. Since the central prediction is specifically about the 21-cm signal from Pop-III stars, the paper should provide a robustness test, for example by recomputing the envelopes with a time-delayed emissivity or a less top-heavy IMF, and report whether the blue region shrinks or disappears.
  4. [§I and Ref. [17]] The paper states that its new Cosmic Dawn code 'is able to reproduce global results derived with the semi analytical 21cmFAST simulation to high precision, as it will be detailed in a forthcoming publication [17]', but the code is not released and the validation paper is unpublished. Because the central claim is a prediction of the global 21-cm signal, the reader cannot independently verify the forward model. The authors should either release the code, include the key equations for the 21-cm evolution (spin temperature, heating, X-ray and Ly-alpha coupling) in an appendix, or provide enough detail in the validation reference for the claim to be checked. The current situation makes the main forecast dependent on an unreviewed and unavailable tool.
  5. [§IV and Abstract] The statement in the abstract and Sec. IV that a deep absorption at z>15 or emission at z>20 'would serve as strong evidence for an early stellar population' overstates the analysis. The paper only shows that within two specific models, some parameter points produce T21 outside the single-population envelope. It does not compare against other single-population extensions (e.g., different X-ray spectral shapes, alternative LW feedback treatments, different IMF choices) that could also generate such signals. Thus 'distinctive within these models' is not equivalent to 'strong indication for Pop-III'. The conclusion should be rephrased to reflect that the claim is conditional on the model assumptions, and the envelope-overlap method should be described as a first-step forecast rather than a definitive discriminator.
minor comments (7)
  1. [§III, first paragraph] Typo: 'dwel' should be 'delve'.
  2. [§II B, Eq. (8) discussion] Typo: 'oupolarization' should be 'polarization'.
  3. [§II B] The cross-section is named 'Thompson' after the physicist; the correct spelling is 'Thomson'.
  4. [Fig. 3 caption] The caption refers to 'Eq. (II D)', which is not a valid equation reference; use the appropriate equation number for the Ly-alpha flux definition.
  5. [Appendix A, Eq. (A5)] The units in the CXB likelihood are written as 'keV cm^2 sec sr' but the exponent notation is inconsistent with the text; please standardize the units throughout.
  6. [Table I] The 'Best fit' row shows two values per parameter in several columns (one for two-population, one for single-population) without explicit labels; adding column headers or a legend would improve readability.
  7. [§IV, bullet 'Optical Depth through Reionization'] The phrasing 'the optical depth through reionization is sensitive to the entire star formation history' is imprecise; tau_e is directly sensitive to the ionization history, and only indirectly to star formation through the ionizing emissivity.

Circularity Check

0 steps flagged · score 0.0 of 10

No significant circularity: the 21-cm 'distinctive signal' region is a genuine post-fit forecast from independently constrained astrophysical parameters, not a fitted target or a self-cited uniqueness claim.

full rationale

The central forecast is not circular. The 21-cm signal is explicitly excluded from the joint constraints: the likelihood in Eq. (A1) is L = L_UVLF × L_tau_e × L_Q × L_CXB, and the paper states 'we do not include them in the joint constraints of Fig. 2' (Sec. III). The global 21-cm envelopes in Fig. 4 are therefore post-fit predictions computed from the already-constrained quantities epsilon_UV, epsilon_X, and x_HI using the standard spin-temperature equations (20)-(21), not quantities fitted to 21-cm data. The 'distinctive region' is defined by the two-population model's T21(z) leaving the single-population 95% envelope, but this is a forecast comparison, not an input used to define the posterior. The paper's heavier reliance on the authors' own prior work (Ref. [13] for the relation between spin temperature and astrophysical fluxes) and on an unpublished same-author validation paper (Ref. [17] for the code's agreement with 21cmFAST) is a reproducibility/evidence concern, not a circular reduction: the cited relation is standard 21-cm physics re-stated in the paper, and the validation target (21cmFAST) is an independent external code. No fitted parameter is renamed as a prediction, and no uniqueness theorem or ansatz is imported from the authors' prior work to force the result. The central derivation is self-contained against the four external datasets, so the paper receives a circularity score of 0.

Assumptions & free parameters 15 free parameters · 8 assumptions · 0 invented entities

The central constraints and 21-cm forecast rest on 15 adjustable or hand-chosen parameters and 8 modeling axioms. The fit parameters are anchored to four external datasets, giving independent grounding. The axioms are standard or stated model choices; the most fragile is the short-lifetime approximation for Pop-III emission.

free parameters (15)
  • log10(F_II*) = median ~ -1.27, 68% CI [-1.65, -1.02] (Table I)
    Normalization of Pop-II star formation efficiency; fit to UVLF and reionization data.
  • alpha_II* = ~0.42, 68% CI [0.38, 0.46]
    Power-law slope of Pop-II star formation efficiency versus halo mass; fit to UVLF.
  • log10(M_II_cut/Msun) = ~7.79 (two-pop), ~7.34 (single), wide 68% CI
    Cutoff halo mass below which Pop-II star formation is exponentially suppressed; only bounded from above.
  • t* = ~0.45, 68% CI [0.19, 0.79]
    Star formation timescale in units of Hubble time; shared by both populations; constrained by UVLF.
  • log10(F_III*) = median ~ -2.11, 68% CI [-2.74, -1.13]
    Normalization of Pop-III star formation efficiency; only upper limit from current data.
  • alpha_III* = ~ -0.19, 68% CI [-0.76, 0.53]
    Power-law slope for Pop-III SFR versus halo mass; weakly constrained.
  • log10(M_III0/Msun) = ~6.94, 68% CI [6.26, 7.86]
    Minimum halo mass for Pop-III formation before LW feedback; free parameter.
  • log10(F_II_esc) = ~ -1.88 (two-pop), ~ -1.74 (single), wide CI
    Normalization of escape fraction of ionizing photons for Pop-II; constrained by tau_e and quasar absorption.
  • alpha_II_esc = ~1.12, 68% CI [0.31, 1.68]
    Mass slope of Pop-II escape fraction; degenerate with F_esc.
  • log10(F_III_esc) = ~ -2.06, 68% CI [-2.72, -1.09]
    Normalization of Pop-III escape fraction; upper limit only.
  • alpha_III_esc = ~0.20, 68% CI [-0.63, 1.28]
    Mass slope of Pop-III escape fraction; weakly constrained.
  • log10(FX) = ~ -0.88, 68% CI [-2.30, 0.65]; upper limit from Chandra CXB
    X-ray luminosity per star formation rate normalization for HMXBs.
  • Emin = ~0.52 keV, 68% CI [0.30, 0.74]
    Minimum X-ray energy escaping host galaxy; essentially prior-dominated.
  • A_LW and beta_LW = fixed at 2 and 0.6; sensitivity tested with (0.8,0.9) and (3,0.5)
    Lyman-Werner feedback parameters in Eq. (7); chosen by hand to interpolate between simulations; not fit to data.
  • z_un^X = 4 (fixed)
    Redshift below which CXB sources are assumed resolved; conservative choice; lowering it strengthens constraints.
assumptions (8)
  • standard math Sheth-Tormen halo mass function (via COLOSSUS) correctly describes the abundance of dark matter halos at z=6-40.
    Used in Eqs. (2)-(3) to convert SFR models into UVLFs and SFRD; not independently verified in this paper.
  • domain assumption UV and X-ray emissivities are proportional to the instantaneous SFRD (short-lifetime approximation, Eq. B4).
    Requires stellar lifetimes under about 4 Myr; argued from MESA/TLUSTY models for a top-heavy IMF, but not proven for all allowed models.
  • domain assumption The two-region reionization model (Eq. 9) with clumping factor C=3 captures the evolution of the ionized fraction.
    C=3 chosen from simulations; recombination rate from Refs. [7,40]; affects the tau_e likelihood.
  • domain assumption Ionizing photon production is fixed at N_ion^II=5000 and N_ion^III=44000 per baryon.
    Taken from population synthesis; the paper notes F_esc values are degenerate with this choice, so constraints shift if N_ion differs.
  • domain assumption High-mass X-ray binaries dominate the high-redshift X-ray emissivity, with spectral slopes alpha_s=1, alpha_h=2.3 and a flat Emin prior from ISM optical depth.
    Based on local starburst observations and simulations; conservative choices for alpha_h and unresolved fraction.
  • ad hoc to paper Lyman-Werner feedback follows Eq. (7) with A_LW=2, beta_LW=0.6, chosen to interpolate between two simulations.
    Not fit; Appendix C tests robustness to extremes.
  • ad hoc to paper Pop-III stars form only in halos below M_II_cut, with the same functional SFR form and same t* as Pop-II (Eq. 6).
    This is the minimal two-population model; the distinction region in Fig. 4 depends on this structural choice.
  • domain assumption The global 21-cm signal depends only on Lyman-band emissivity, X-ray emissivity, and neutral hydrogen fraction (Sec. III).
    Standard 21-cm physics; ignores exotic heating or coupling sources and inhomogeneities beyond the global treatment.

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Pith. "Pith review of Closing in on Pop-III Stars: Constraints and Predictions Across the Spectrum." pith.science (2026). https://pith.science/paper/7NQQUQRK

@misc{pith2026250203525,
  author       = {Pith},
  title        = {Pith review of: Closing in on Pop-III Stars: Constraints and Predictions Across the Spectrum},
  year         = {2026},
  howpublished = {\url{https://pith.science/paper/7NQQUQRK}},
  note         = {Machine review of arXiv:2502.03525}
}
read the original abstract

The absence of direct high redshift observations poses a significant challenge in understanding the properties of first stars. Nonetheless, the cumulative effect of entire stellar populations can be studied with current data. In this work we use a combination of high redshift observables in order to infer the formation and emission properties of the first stellar populations: high redshift UVLFs, the optical depth of CMB photons to reionization, hydrogen absorption lines in quasar spectra, and measurements of the soft cosmic X-ray background. We study two minimal models of stellar population: i) a single, Pop-II, stellar population which dominates throughout Cosmic Dawn, ii) two distinct stellar populations, Pop-II and Pop-III, dominating at different times with the transition between them taken as a free parameter. We set strong constraints on the properties of Pop-II stars, and upper limits on the formation and multi-wavelength emission of Pop-III stars. After applying the constraints above, we present the viable envelopes of the 21-cm global signal with and without Pop-III stars. We identify a region in the parameter space of the two population model which predicts a global 21-cm signal distinctive from that of the single population one. A measurement of such a signal would be a strong indication for the presence of Pop-III stars at early times.

Figures

Figures reproduced from arXiv: 2502.03525 by the authors.

Figure 1
Figure 1. FIG. 1. The 1500 [PITH_FULL_IMAGE:figures/full_fig_p004_1.png] view at source ↗
Figure 2
Figure 2. FIG. 2. Corner plot showing the parameter space of the two stellar population model ( [PITH_FULL_IMAGE:figures/full_fig_p005_2.png] view at source ↗
Figure 3
Figure 3. FIG. 3. The evolution of global quantities: the SFRD defined in Eq. ( [PITH_FULL_IMAGE:figures/full_fig_p009_3.png] view at source ↗
Figures from the paper (4 more)
Figure 4
Figure 4. Figure 4: FIG. 4 [PITH_FULL_IMAGE:figures/full_fig_p010_4.png]
Figure 5
Figure 5. Figure 5: FIG. 5 [PITH_FULL_IMAGE:figures/full_fig_p018_5.png]
Figure 6
Figure 6. Figure 6: FIG. 6. The viable region of 21-cm signals for three different models. The [PITH_FULL_IMAGE:figures/full_fig_p019_6.png]
Figure 7
Figure 7. Figure 7: FIG. 7. Corner plot of the two stellar population model (as in Fig. [PITH_FULL_IMAGE:figures/full_fig_p020_7.png]

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Works this paper leans on

87 extracted references · 55 canonical work pages

  1. [17]

    Katz, 21-cm Global, to appear

    O. Katz, 21-cm Global, to appear

  2. [13]

    O. Z. Katz, N. Outmezguine, D. Redigolo, and T. Volansky, Probing new physics at cosmic dawn with 21-cm cosmology , Nucl. Phys. B 1003 (2024) 116502, [ arXiv:2401.10978]

  3. [1]

    Constraining the redshifted 21-cm signal with the unresolved soft X-ray background

    A. Fialkov, A. Cohen, R. Barkana, and J. Silk, Constraining the redshifted 21-cm signal with the unresolved soft X-ray background, Mon. Not. Roy. Astron. Soc. 464 (2017), no. 3 3498–3508, [ arXiv:1602.07322]

  4. [2]

    Pochinda, T

    S. Pochinda, T. Gessey-Jones, H. T. J. Bevins, A. Fialkov, S. Heimersheim, I. Abril-Cabezas, E. de Lera Acedo, S. Singh, S. Sikder, and R. Barkana, Constraining the properties of population iii galaxies with multi-wavelength observations , 2024

  5. [3]

    B. D. Lehmer et al., The 4 Ms Chandra Deep Field-South Number Counts Apportioned by Source Class: Pervasive Active Galactic Nuclei and the Ascent of Normal Galaxies , Astrophys. J. 752 (2012) 46, [ arXiv:1204.1977]

  6. [4]

    The nature of the unresolved extragalactic soft CXB

    N. Cappelluti et al., The nature of the unresolved extragalactic soft CXB , Mon. Not. Roy. Astron. Soc. 427 (2012) 651, [arXiv:1208.4105]

  7. [5]

    Aghanim et al., Planck 2018 results

    Planck Collaboration, N. Aghanim et al., Planck 2018 results. VI. Cosmological parameters , Astron. Astrophys. 641 (2020) A6, [ arXiv:1807.06209]. [Erratum: Astron.Astrophys. 652, C4 (2021)]

  8. [6]

    McGreer, A

    I. McGreer, A. Mesinger, and V. D’Odorico, Model-independent evidence in favour of an end to reionization by z ≈ 6, Mon. Not. Roy. Astron. Soc. 447 (2015), no. 1 499–505, [ arXiv:1411.5375]

Show all 87 references
  1. [7]

    C. A. Mason, R. P. Naidu, S. Tacchella, and J. Leja, Model-independent constraints on the hydrogen-ionizing emissivity at z ¿ 6 , Monthly Notices of the Royal Astronomical Society 489 (Aug., 2019) 2669–2676

  2. [8]

    R. J. Bouwens, G. D. Illingworth, P. A. Oesch, M. Trenti, I. Labb´ e, L. Bradley, M. Carollo, P. G. van Dokkum, V. Gonzalez, B. Holwerda, M. Franx, L. Spitler, R. Smit, and D. Magee, Uv luminosity functions at redshiftsz ∼ 4 toz ∼ 10: 10,000 galaxies fromhstlegacy fields , The...

  3. [9]

    J. Park, A. Mesinger, B. Greig, and N. Gillet, Inferring the astrophysics of reionization and cosmic dawn from galaxy luminosity functions and the 21-cm signal , Mon. Not. Roy. Astron. Soc. 484 (2019), no. 1 933–949, [ arXiv:1809.08995]

  4. [10]

    R. J. Bouwens, P. A. Oesch, M. Stefanon, G. Illingworth, I. Labb´ e, N. Reddy, H. Atek, M. Montes, R. Naidu, T. Nanayakkara, E. Nelson, and S. Wilkins, New determinations of the uv luminosity functions from z ∼ 9 to 2 show a remarkable consistency with halo growth and a consta...

  5. [11]

    C. T. Donnan, R. J. McLure, J. S. Dunlop, D. J. McLeod, D. Magee, K. Z. Arellano-C´ ordova, L. Barrufet, R. Begley, R. A. A. Bowler, A. C. Carnall, F. Cullen, R. S. Ellis, A. Fontana, G. D. Illingworth, N. A. Grogin, M. L. Hamadouche, A. M. Koekemoer, F. Y. Liu, C. Mason, P. S...

  6. [12]

    J. B. Mu˜ noz, Y. Qin, A. Mesinger, S. G. Murray, B. Greig, and C. Mason, The impact of the first galaxies on cosmic dawn and reionization , Mon. Not. Roy. Astron. Soc. 511 (2022), no. 3 3657–3681, [ arXiv:2110.13919]

  7. [14]

    J. L. Bernal and E. D. Kovetz, Line-intensity mapping: theory review with a focus on star-formation lines , The Astronomy and Astrophysics Review 30 (Sept., 2022)

  8. [15]

    Y. Qin, A. Mesinger, J. Park, B. Greig, and J. B. Mu˜ noz, A tale of two sites–i. inferring the properties of minihalo-hosted galaxies from current observations , Monthly Notices of the Royal Astronomical Society 495 (2020), no. 1 123–140

  9. [16]

    Schaerer, On the properties of massive Population III stars and metal-free stellar populations , Astronomy & Astrophysics 382 (Jan., 2002) 28–42, [ astro-ph/0110697]

    D. Schaerer, On the properties of massive Population III stars and metal-free stellar populations , Astronomy & Astrophysics 382 (Jan., 2002) 28–42, [ astro-ph/0110697]

  10. [18]

    Mesinger, S

    A. Mesinger, S. Furlanetto, and R. Cen, 21Cmfast: a Fast, Semi-Numerical Simulation of the High-Redshift 21-Cm Signal, Mon. Not. Roy. Astron. Soc. 411 (2011) 955, [ arXiv:1003.3878]

  11. [19]

    Madau and M

    P. Madau and M. Dickinson, Cosmic star-formation history , Annual Review of Astronomy and Astrophysics 52 (Aug.,

  12. [20]

    Oke and J

    J. Oke and J. Gunn, Secondary standard stars for absolute spectrophotometry , Astrophysical Journal, Part 1, vol. 266, Mar. 15, 1983, p. 713-717. 266 (1983) 713–717

  13. [21]

    R. K. Sheth and G. Tormen, Large-scale bias and the peak background split , Monthly Notices of the Royal Astronomical Society 308 (sep, 1999) 119–126

  14. [22]

    Diemer, COLOSSUS: A python toolkit for cosmology, large-scale structure, and dark matter halos , The Astrophysical Journal Supplement Series 239 (dec, 2018) 35

    B. Diemer, COLOSSUS: A python toolkit for cosmology, large-scale structure, and dark matter halos , The Astrophysical Journal Supplement Series 239 (dec, 2018) 35

  15. [23]

    P. S. Behroozi and J. Silk, A simple technique for predicting high-redshift galaxy evolution , The Astrophysical Journal 799 (2015), no. 1 32

  16. [24]

    R. J. Bouwens et al., UV Luminosity Functions at redshifts z ∼4 to z ∼10: 10000 Galaxies from HST Legacy Fields , Astrophys. J. 803 (2015), no. 1 34, [ arXiv:1403.4295]

  17. [25]

    R. J. Bouwens, P. A. Oesch, G. D. Illingworth, R. S. Ellis, and M. Stefanon, The z ∼ 6 Luminosity Function Fainter than -15 mag from the Hubble Frontier Fields: The Impact of Magnification Uncertainties , The Astrophysical Journal 843 (July, 2017) 129, [arXiv:1610.00283]

  18. [26]

    H. Atek, J. Richard, J.-P. Kneib, and D. Schaerer, The Extreme Faint End of the UV Luminosity Function at z ∼ 6 Through Gravitational Telescopes: a comprehensive assessment of strong lensing uncertainties , Mon. Not. Roy. Astron. Soc. 479 (2018), no. 4 5184–5195, [ arXiv:1803.09747]

  19. [27]

    R. C. Livermore, S. L. Finkelstein, and J. M. Lotz, Directly Observing the Galaxies Likely Responsible for Reionization , The Astrophysical Journal 835 (Feb., 2017) 113, [arXiv:1604.06799]

  20. [28]

    Ishigaki, R

    M. Ishigaki, R. Kawamata, M. Ouchi, M. Oguri, K. Shimasaku, and Y. Ono, Full-data Results of Hubble Frontier Fields: UV Luminosity Functions at z ∼ 6-10 and a Consistent Picture of Cosmic Reionization , The Astrophysical Journal 854 (Feb., 2018) 73, [arXiv:1702.04867]

  21. [29]

    P. A. Oesch, R. J. Bouwens, G. D. Illingworth, I. Labb´ e, and M. Stefanon, The dearth of z ∼10 galaxies in all hst legacy fields—the rapid evolution of the galaxy population in the first 500 myr* , The Astrophysical Journal 855 (mar, 2018) 105

  22. [30]

    L. Y. A. Yung, R. S. Somerville, S. L. Finkelstein, G. Popping, and R. Dav´ e, Semi-analytic forecasts forjwst– i. uv luminosity functions atz = 4–10 , Monthly Notices of the Royal Astronomical Society 483 (Nov., 2018) 2983–3006

  23. [31]

    C. T. Donnan, R. J. McLure, J. S. Dunlop, D. J. McLeod, D. Magee, K. Z. Arellano-C´ ordova, L. Barrufet, R. Begley, R. A. A. Bowler, A. C. Carnall, F. Cullen, R. S. Ellis, A. Fontana, G. D. Illingworth, N. A. Grogin, M. L. Hamadouche, A. M. Koekemoer, F. Y. Liu, C. Mason, P. S...

  24. [32]

    J. B. Mu˜ noz, J. Mirocha, J. Chisholm, S. R. Furlanetto, and C. Mason, Reionization after JWST: a photon budget crisis?, Mon. Not. Roy. Astron. Soc. 535 (2024), no. 1 L37–L43, [ arXiv:2404.07250]

  25. [33]

    M. E. Machacek, G. L. Bryan, and T. Abel, Simulations of pregalactic structure formation with radiative feedback , The Astrophysical Journal 548 (2001), no. 2 509

  26. [34]

    Kulkarni, E

    M. Kulkarni, E. Visbal, and G. L. Bryan, The critical dark matter halo mass for population III star formation: Dependence on lyman–werner radiation, baryon-dark matter streaming velocity, and redshift , The Astrophysical Journal 917 (aug, 2021) 40

  27. [35]

    A. T. Schauer, S. C. Glover, R. S. Klessen, and P. Clark, The influence of streaming velocities and lyman–werner radiation on the formation of the first stars , Monthly Notices of the Royal Astronomical Society 507 (2021), no. 2 1775–1787

  28. [36]

    Dalal, U.-L

    N. Dalal, U.-L. Pen, and U. Seljak, Large-scale bao signatures of the smallest galaxies , Journal of Cosmology and Astroparticle Physics 2010 (Nov., 2010) 007–007

  29. [37]

    Tseliakhovich, R

    D. Tseliakhovich, R. Barkana, and C. M. Hirata, Suppression and spatial variation of early galaxies and minihaloes: Suppression of minihaloes , Monthly Notices of the Royal Astronomical Society 418 (Sept., 2011) 906–915

  30. [38]

    R. S. Klessen and S. C. O. Glover, The first stars: formation, properties, and impact , arXiv:2303.12500

  31. [39]

    J. R. Pritchard and S. R. Furlanetto, 21 Cm Fluctuations from Inhomogeneous X-Ray Heating Before Reionization , Mon. Not. Roy. Astron. Soc. 376 (2007) 1680–1694, [ astro-ph/0607234]

  32. [40]

    Madau, F

    P. Madau, F. Haardt, and M. J. Rees, Radiative transfer in a clumpy universe. iii. the nature of cosmological ionizing sources, The Astrophysical Journal 514 (1999), no. 2 648. 14

  33. [41]

    Shull, A

    M. Shull, A. Harness, M. Trenti, and B. Smith, Critical star-formation rates for reionization: Full reionization occurs at z = 7 , 2011

  34. [42]

    Finlator, S

    K. Finlator, S. P. Oh, F. ¨Ozel, and R. Dav´ e,Gas clumping in self-consistent reionization models: Gas clumping at z ≥ 5, Monthly Notices of the Royal Astronomical Society 427 (Nov., 2012) 2464–2479

  35. [43]

    A. A. Kaurov and N. Y. Gnedin, Cosmic reionization on computers. iii. the clumping factor , The Astrophysical Journal 810 (Sept., 2015) 154

  36. [44]

    Leitherer, D

    C. Leitherer, D. Schaerer, J. D. Goldader, R. M. Gonzalez Delgado, C. Robert, D. F. Kune, D. F. d. Mello, D. Devost, and T. M. Heckman, Starburst99: Synthesis models for galaxies with active star formation , Astrophys. J. Suppl. 123 (1999) 3–40, [ astro-ph/9902334]

  37. [45]

    Bromm, R

    V. Bromm, R. P. Kudritzki, and A. Loeb, Generic spectrum and ionization efficiency of a heavy initial mass function for the first stars , The Astrophysical Journal 552 (may, 2001) 464

  38. [46]

    H. J. Grimm, M. Gilfanov, and R. Sunyaev, High Mass X-Ray Binaries as a Star Formation Rate Indicator in Distant Galaxies, Mon. Not. Roy. Astron. Soc. 339 (2003) 793, [ astro-ph/0205371]

  39. [47]

    Ranalli, A

    P. Ranalli, A. Comastri, and G. Setti, The 2–10 kev luminosity as a star formation rate indicator , Astronomy & Astrophysics 399 (2003), no. 1 39–50

  40. [48]

    Gilfanov, H

    M. Gilfanov, H. J. Grimm, and R. Sunyaev, L(X)-Sfr Relation in Star Forming Galaxies , Mon. Not. Roy. Astron. Soc. 347 (2004) L57, [ astro-ph/0301331]

  41. [49]

    Fabbiano, X-ray source populations in galaxies , Ann

    G. Fabbiano, X-ray source populations in galaxies , Ann. Rev. Astron. Astrophys. 44 (2006) 323–366, [astro-ph/0511481]

  42. [50]

    Mineo, M

    S. Mineo, M. Gilfanov, and R. Sunyaev, X-ray emission from star-forming galaxies - I. High-mass X-ray binaries , Mon. Not. Roy. Astron. Soc. 419 (2012) 2095, [ arXiv:1105.4610]

  43. [51]

    Pacucci, A

    F. Pacucci, A. Mesinger, S. Mineo, and A. Ferrara, The X-Ray Spectra of the First Galaxies: 21 Cm Signatures , Mon. Not. Roy. Astron. Soc. 443 (2014), no. 1 678–686, [ arXiv:1403.6125]

  44. [52]

    Mirocha, Decoding the X-Ray Properties of Pre-Reionization Era Sources , Mon

    J. Mirocha, Decoding the X-Ray Properties of Pre-Reionization Era Sources , Mon. Not. Roy. Astron. Soc. 443 (2014), no. 2 1211–1223, [ arXiv:1406.4120]

  45. [53]

    Fragos, B

    T. Fragos, B. D. Lehmer, S. Naoz, A. Zezas, and A. R. Basu-Zych, Energy Feedback from X-Ray Binaries in the Early Universe, Astrophys. J. Lett. 776 (2013) L31, [ arXiv:1306.1405]

  46. [54]

    A. Das, A. Mesinger, A. Pallottini, A. Ferrara, and J. H. Wise, High Mass X-Ray Binaries and the Cosmic 21-Cm Signal: Impact of Host Galaxy Absorption , Mon. Not. Roy. Astron. Soc. 469 (2017), no. 1 1166–1174, [ arXiv:1702.00409]

  47. [55]

    H. D. Kaur, Y. Qin, A. Mesinger, A. Pallottini, T. Fragos, and A. Basu-Zych, The 21-cm signal from the cosmic dawn: metallicity dependence of high-mass X-ray binaries , Mon. Not. Roy. Astron. Soc. 513 (2022), no. 4 5097–5108, [arXiv:2203.10851]

  48. [56]

    O. Z. Katz, A. Mesinger, D. Redigolo, and T. Volansky, Revisiting X-ray fluxes constraints , to appear

  49. [57]

    Barkana and A

    R. Barkana and A. Loeb, Detecting the Earliest Galaxies Through Two New Sources of 21Cm Fluctuations , Astrophys. J. 626 (2005) 1–11, [ astro-ph/0410129]

  50. [58]

    C. M. Hirata, Wouthuysen-Field Coupling Strength and Application to High-Redshift 21 Cm Radiation , Mon. Not. Roy. Astron. Soc. 367 (2006) 259–274, [ astro-ph/0507102]

  51. [59]

    D. Hoang-Binh, A program to compute exact hydrogenic radial integrals, oscillator strengths, and einstein coefficients, for principal quantum numbers up to n ≈ 1000, Computer physics communications 166 (2005), no. 3 191–196

  52. [60]

    Leitherer, D

    C. Leitherer, D. Schaerer, J. D. Goldader, R. M. G. Delgado, C. Robert, D. F. Kune, D. F. de Mello, D. Devost, and T. M. Heckman, Starburst99: synthesis models for galaxies with active star formation , The Astrophysical Journal Supplement Series 123 (1999), no. 1 3

  53. [61]

    Bromm, R

    V. Bromm, R. P. Kudritzki, and A. Loeb, Generic spectrum and ionization efficiency of a heavy initial mass function for the first stars , The Astrophysical Journal 552 (2001), no. 2 464

  54. [62]

    J. R. Pritchard and A. Loeb, 21-cm cosmology, Rept. Prog. Phys. 75 (2012) 086901, [ arXiv:1109.6012]

  55. [63]

    Mesinger, ed., The Cosmic 21-cm Revolution

    A. Mesinger, ed., The Cosmic 21-cm Revolution . 2514-3433. IOP Publishing, 2019

  56. [64]

    Snowmass 2021 Cosmic F rontier 5 T opical GroupCollaboration, A. Liu, L. Newburgh, B. Saliwanchik, and A. Slosar, Snowmass2021 Cosmic Frontier White Paper: 21cm Radiation as a Probe of Physics Across Cosmic Ages , arXiv:2203.07864

  57. [65]

    Furlanetto, S

    S. Furlanetto, S. P. Oh, and F. Briggs, Cosmology at Low Frequencies: The 21 cm Transition and the High-Redshift Universe, Phys. Rept. 433 (2006) 181–301, [ astro-ph/0608032]

  58. [66]

    G. B. Field, Excitation of the Hydrogen 21-cm Line , Proceedings of the IRE 46 (Jan., 1958) 240–250

  59. [67]

    S. A. Wouthuysen, On the excitation mechanism of the 21-cm (radio-frequency) interstellar hydrogen emission line. , Astron. J. 57 (Jan., 1952) 31–32

  60. [68]

    T. H. C. Z. Abdurashidova, T. Adams, J. E. Aguirre, P. Alexander, Z. S. Ali, R. Baartman, Y. Balfour, R. Barkana, A. P. Beardsley, G. Bernardi, T. S. Billings, J. D. Bowman, R. F. Bradley, D. Breitman, P. Bull, J. Burba, S. Carey, C. L. Carilli, C. Cheng, S. Choudhuri, D. R. D...

  61. [69]

    Hazumi, J

    M. Hazumi, J. Borrill, Y. Chinone, M. A. Dobbs, H. Fuke, A. Ghribi, M. Hasegawa, K. Hattori, M. Hattori, W. L. Holzapfel, Y. Inoue, K. Ishidoshiro, H. Ishino, K. Karatsu, N. Katayama, I. Kawano, A. Kibayashi, Y. Kibe, N. Kimura, K. Koga, E. Komatsu, A. T. Lee, H. Matsuhara, T....

  62. [70]

    Hanany et al., PICO: Probe of Inflation and Cosmic Origins , arXiv:1902.10541

    NASA PICOCollaboration, S. Hanany et al., PICO: Probe of Inflation and Cosmic Origins , arXiv:1902.10541

  63. [71]

    Marchesi et al., Mock catalogs for the extragalactic X-ray sky: simulating AGN surveys with Athena and with the AXIS probe, Astron

    S. Marchesi et al., Mock catalogs for the extragalactic X-ray sky: simulating AGN surveys with Athena and with the AXIS probe, Astron. Astrophys. 642 (2020) A184, [ arXiv:2008.09133]

  64. [72]

    Lazare, J

    H. Lazare, J. Flitter, and E. D. Kovetz, Constraints on the fuzzy dark matter mass window from high-redshift observables , 2024

  65. [73]

    Pospelov, J

    M. Pospelov, J. Pradler, J. T. Ruderman, and A. Urbano, Room for New Physics in the Rayleigh-Jeans Tail of the Cosmic Microwave Background , Phys. Rev. Lett. 121 (2018), no. 3 031103, [ arXiv:1803.07048]

  66. [74]

    Caputo, H

    A. Caputo, H. Liu, S. Mishra-Sharma, M. Pospelov, J. T. Ruderman, and A. Urbano, Edges and Endpoints in 21-Cm Observations from Resonant Photon Production , Phys. Rev. Lett. 127 (2021), no. 1 011102, [ arXiv:2009.03899]

  67. [75]

    Bondarenko, J

    K. Bondarenko, J. Pradler, and A. Sokolenko, Constraining dark photons and their connection to 21 cm cosmology with CMB data , Phys. Lett. B 805 (2020) 135420, [ arXiv:2002.08942]

  68. [76]

    Foreman-Mackey, D

    D. Foreman-Mackey, D. W. Hogg, D. Lang, and J. Goodman, ¡tt¿emcee¡/tt¿: The mcmc hammer , Publications of the Astronomical Society of the Pacific 125 (Mar., 2013) 306–312

  69. [77]

    Gessey-Jones, N

    T. Gessey-Jones, N. S. Sartorio, A. Fialkov, G. M. Mirouh, M. Magg, R. G. Izzard, E. de Lera Acedo, W. J. Handley, and R. Barkana, Impact of the primordial stellar initial mass function on the 21-cm signal , Monthly Notices of the Royal Astronomical Society 516 (jul, 2022) 841–860

  70. [78]

    Paxton, R

    B. Paxton, R. Smolec, J. Schwab, A. Gautschy, L. Bildsten, M. Cantiello, A. Dotter, R. Farmer, J. A. Goldberg, A. S. Jermyn, S. M. Kanbur, P. Marchant, A. Thoul, R. H. D. Townsend, W. M. Wolf, M. Zhang, and F. X. Timmes, Modules for experiments in stellar astrophysics (mesa): ...

  71. [79]

    Hubeny, A computer program for calculating non-lte model stellar atmospheres , Computer Physics Communications 52 (1988), no

    I. Hubeny, A computer program for calculating non-lte model stellar atmospheres , Computer Physics Communications 52 (1988), no. 1 103–132

  72. [80]

    R. B. Larson, Early star formation and the evolution of the stellar initial mass function in galaxies , Monthly Notices of the Royal Astronomical Society 301 (Dec., 1998) 569–581

  73. [81]

    Bromm, N

    V. Bromm, N. Yoshida, L. Hernquist, and C. F. McKee, The formation of the first stars and galaxies , Nature 459 (May,

  74. [82]

    T. H. Greif, V. Springel, S. D. M. White, S. C. O. Glover, P. C. Clark, R. J. Smith, R. S. Klessen, and V. Bromm, Simulations on a moving mesh: The clustered formation of population iii protostars , The Astrophysical Journal 737 (Aug., 2011) 75

  75. [83]

    Dopcke, S

    G. Dopcke, S. C. Glover, P. C. Clark, and R. S. Klessen, On the initial mass function of low-metallicity stars: the importance of dust cooling , The Astrophysical Journal 766 (2013), no. 2 103

  76. [84]

    Tarumi, T

    Y. Tarumi, T. Hartwig, and M. Magg, Implications of inhomogeneous metal mixing for stellar archaeology , The Astrophysical Journal 897 (July, 2020) 58

  77. [85]

    Fialkov, R

    A. Fialkov, R. Barkana, E. Visbal, D. Tseliakhovich, and C. M. Hirata, The 21-cm signature of the first stars during the lyman–werner feedback era, Monthly Notices of the Royal Astronomical Society 432 (May, 2013) 2909–2916

  78. [86]

    K. Ahn, P. R. Shapiro, I. T. Iliev, G. Mellema, and U.-L. Pen, The inhomogeneous background of h2-dissociating radiation during cosmic reionization , The Astrophysical Journal 695 (2009), no. 2 1430. 16 Star Formation Population Pop-III Pop-II - Parameter log10(F III ⋆ ) αIII ...

  79. [87]

    Pop-III star Lifetime Since no direct observation of Pop-III stars are available, we rely on modeling to assess the validity of the approx- imation in Eq. (13). For this purpose, we use the results from Ref. [77], who employed the MESA stellar evolution code [78] to simulate t...

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