Pith. sign in

REVIEW 2 major objections 7 minor 1 cited by

Probing the ionizing photon output of galaxies near cosmic dawn with the patchy kSZ effect

T0 review · 2 major / 7 minor · reviewed 2026-08-06 · deepseek-v4-flash

Pith's one-line read For a fixed source clustering model, the patchy kSZ amplitude at $\ell=3000$ measures when reionization began and how many ionizing photons early galaxies produced.

desk verdict Solid forward-modeling paper that makes a credible case for pkSZ as a start-of-reionization probe and offers two useful degeneracy-breaking diagnostics, though a simulation resolution bias in the faint-end source model needs a quantitative check. read the letter →

arxiv 2507.17817 v1 pith:2SP3Q35T submitted 2025-07-23 astro-ph.CO astro-ph.GA

classification astro-ph.COastro-ph.GA
keywords patchykineticSunyaev-Zel'dovicheffectreionizationcosmicdawnLyman-alphaforestionizingphotonbudgetradiativetransfersimulationshigh-redshiftgalaxiesCMBsecondaryanisotropies
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

This paper uses radiative transfer simulations of cosmic reionization to show that the patchy kinetic Sunyaev-Zel'dovich (pkSZ) signal in the cosmic microwave background can act as a clock for the start of reionization. Because Lyman-$\alpha$ forest observations now pin down when reionization ended, the amplitude of the pkSZ power at angular scale $\ell\sim3000$ becomes a measure of how early reionization began and of the cumulative ionizing photon output of high-redshift galaxies. The paper also shows that uncertainty in how ionizing sources cluster weakens this relation, and demonstrates two ways to break the degeneracy: the observed large-scale fluctuations in Lyman-$\alpha$ opacity at $z=5$--$6$, and the shape of the pkSZ power spectrum around $\ell=3000$. These results give a path to translating existing CMB upper limits and future measurements into constraints on the ionizing photon budget of galaxies near cosmic dawn.

What carries the argument

The central object is the patchy kSZ angular power spectrum $D_\ell$, computed from the transverse ionized momentum power spectrum $P_{q_\perp}(k,z)$ integrated along the line of sight, with a correction for missing large-scale velocity modes. This quantity carries information about the morphology of ionized regions during the first roughly 30--40% of reionization: the paper finds that 50--85% of $D_{3000}$ is accumulated before the ionized fraction reaches $x_{\rm HII}=40%$. The analysis also uses the summary statistics $z_{05}$ and $N_{\gamma/H}(z\geq z_*)$ to quantify when reionization starts and how many ionizing photons early galaxies emit.

What would settle it

A concrete test is to measure the pkSZ power spectrum at several angular scales between $\ell=2500$ and $\ell=5000$ with a future CMB experiment. If $D_{3000}$ comes out high (near $3\,\mu K^2$) but the normalized slope $(D_{2500}-D_{5000})/D_{3000}$ is flat, it would falsify the prediction that highly clustered sources produce steep spectra, and with it the claim that the slope can break the history-clustering degeneracy. Conversely, a low measured $D_{3000}$ near $1\,\mu K^2$ combined with a model that starts reionization at $z_{05}>13$ would falsify the $z_{05}$--$D_{3000}$ correlation for a fixed source clustering, since the relation says early starts require high pkSZ power.

Watch

Extended reading notes

Core claim

The paper's central claim is that, once the end of reionization is fixed by Lyman-$\alpha$ forest measurements, the amplitude of the pkSZ power spectrum at $\ell=3000$ correlates strongly with the redshift at which the volume-averaged ionized fraction reaches 5% ($z_{05}$) and with the cumulative number of ionizing photons emitted per hydrogen atom before $z=8$ and $z=12$. For a single, fixed prescription connecting halos to ionizing luminosity, this correlation is tight; across alternative source-clustering prescriptions it is weakened by a degeneracy between reionization history and morphology. The paper argues the degeneracy can be partly broken by requiring models to match the observed width of Lyman-$\alpha$ effective opacity fluctuations at $z=5$--$6$, and by using the slope of the pkSZ spectrum: more clustered sources produce steeper power around $\ell=3000$, while faint-source-dominated models produce flatter power.

Load-bearing premise

The load-bearing premise is that tuning the global ionizing emissivity by trial and error to match the observed Lyman-alpha forest mean transmission at $z=5$--$6$, together with using three halo-emissivity prescriptions to bracket the unknown source clustering at $z>8$, leaves enough realism that the spread in predicted pkSZ power among models reflects physical differences in start epoch and clustering rather than artifacts of the tuning procedure or of missing physics.

Editorial extensions

If this is right

  • Given the Lyman-alpha forest pins down the end of reionization, the existing 95% upper limit $D_{3000}<3.0\,\mu K^2$ implies $z_{05}\lesssim12$ and $N_{\gamma/H}(z>8)\lesssim1.0$ for the fiducial $\dot n_{\rm ion}\propto L_{\rm UV}$ source model; a conservative ACT-based limit tightens these to $z_{05}\lesssim11$, $N_{\gamma/H}(z>8)\lesssim0.7$, and $N_{\gamma/H}(z>12)\lesssim0.08$.
  • Most (50--85%) of $D_{3000}$ is produced before the ionized fraction reaches 40%, so the pkSZ signal is primarily a probe of the earliest phases of reionization rather than of its end.
  • Matching the observed width of Lyman-alpha opacity fluctuations at $z=5$--$6$ pulls reionization histories earlier and partially restores the tight $D_{3000}$--$z_{05}$ and $D_{3000}$--$N_{\gamma/H}$ scalings that source-clustering scatter had weakened.
  • The normalized slope $(D_{2500}-D_{5000})/D_{3000}$ separates source-clustering prescriptions, with the most clustered models about twice as steep as the $\dot n_{\rm ion}\propto L_{\rm UV}$ models at fixed $D_{3000}$; this diagnostic is most useful if $D_{3000}$ turns out to be high.
  • Stochastic star formation in up to 25% of galaxies leaves the pkSZ predictions nearly unchanged, while a 50% bursty fraction flattens the spectrum and becomes partially degenerate with weaker source clustering.

Reading between the lines

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

  • If the $z_{05}$--$D_{3000}$ correlation holds, a low measured $D_{3000}$ would imply that JWST-visible galaxies alone did not start reionization; the photons must have come from fainter, undetected sources, since early starts boost the pkSZ signal.
  • The slope diagnostic gives a discriminating prediction: a flat pkSZ slope at high $D_{3000}$ would rule out highly clustered UV-bright sources, while a steep slope would disfavor faint-source-dominated reionization; applying this to data will require modeling bursty star formation.
  • The paper's discussion of minihalo-driven early starts suggests a scenario, early reionization by weakly clustered sources, that could simultaneously satisfy high CMB optical depth, Lyman-alpha forest constraints, and low $D_{3000}$; future small-scale CMB slope measurements can test it.
  • Combining the pkSZ-derived $N_{\gamma/H}$ limits with JWST luminosity functions could yield a direct constraint on the average escape fraction of ionizing photons from high-redshift galaxies, a quantity currently impossible to measure directly.
Share X Bluesky LinkedIn Reddit HN

Editorial analysis

A structured set of objections, weighed in public.

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

Referee Report

2 major / 7 minor

Summary. This paper uses a suite of radiative transfer simulations (FlexRT) of reionization in a 200 h^-1 cMpc box to study how the patchy kinetic Sunyaev-Zel'dovich (pkSZ) power spectrum can probe the early ionizing photon output of galaxies. The models are calibrated to Lyα forest mean transmission at z≈5–6, with a reduced-speed-of-light approximation corrected via Eq. (2.1) and validated for the pkSZ power to ~1.5% in Appendix A. For a fixed emissivity-halo prescription (n_dot_ion ∝ L_UV), the authors find that D3000^{pkSZ} correlates tightly with the start epoch z05 (Fig. 2) and with the cumulative photon budget Nγ/H for z>8 and z>12 (Fig. 4), yielding approximate upper limits from SPT and ACT. Varying the source clustering prescription (LUV, UV-Bright, Democratic) introduces 35–50% scatter in D3000 for fixed reionization history (Fig. 5), creating a degeneracy. The paper proposes two ways to break it: large-scale Lyα forest opacity fluctuations (Section 4.2.1) and the shape/slope of the pkSZ spectrum around ℓ=3000 (Section 4.2.2, Figs. 10–11). Tests with evolving emissivity-halo connections and stochastic star formation suggest that the main conclusions are robust.

Significance. The manuscript is timely and relevant: it connects existing SPT/ACT kSZ measurements and forthcoming CMB-S4/Simons Observatory forecasts to JWST-era questions about the ionizing output of early galaxies. Its main strengths are the explicit calibration to current Lyα forest constraints, the forward (non-circular) use of the calibrated models to predict pkSZ, and the direct validation of the reduced-speed-of-light correction for the pkSZ power in Appendix A. The correlations in Figs. 2 and 4 are physically well motivated, and the paper is careful to distinguish fiducial, extreme, and uncalibrated models. If the Democratic-anchor issue identified below is addressed, the proposed framework would provide a practical route for interpreting upcoming small-scale CMB measurements.

major comments (2)
  1. [§2.1, §4.1, Fig. 11] The Democratic prescription anchors the low-clustering end of the source-model bracket, but it is the one most affected by the ~50% incompleteness of the simulated halo mass function at the adopted 10^9 h^-1 M_sun threshold stated in §2.1. Because the Democratic model assigns equal emissivity to every halo above this threshold, the near-threshold halos dominate its ionizing photon budget; the missing halos are the least biased, so the simulated Democratic source field is more clustered than the true equal-emissivity population. The caveat in §2.1 that near-threshold halos are subdominant in 'most realistic' source models does not apply to the Democratic case. This biases the Democratic D3000 upward and steepens its slope, shifting the Democratic points in Figures 5 and 11 toward the LUV and UV-Bright models and narrowing the separation between the trend lines on which the slope-based degeneracy-breaking argument of §4.2.2 relies. The authors should quantify this effect by re-running the Democratic model with a mass-function correction, or with the source threshold raised to ~3×10^9 h^-1 M_sun where completeness is ~10%, or by directly showing that the unresolved halos contribute negligibly to the pkSZ power.
  2. [§4.2.2, Fig. 11] The slope diagnostic in §4.2.2 is the quantitative basis for the claim that future multi-scale pkSZ measurements can break the history-clustering degeneracy, but Figure 11 shows no estimate of the sample variance of the simulated Dℓ. All models are run in the same 200 h^-1 cMpc box, and the analytic correction of Eq. (2.5) adds only the missing large-scale velocity power; it does not account for realization-to-realization variance of the reionization morphology. Without an error estimate on (D2500−D5000)/D3000, the reader cannot assess whether the separation between the Democratic, LUV, and UV-Bright trend lines is significant compared to cosmic variance. I request a jackknife estimate from sub-boxes, or at least an explicit discussion of the expected sample variance, for the representative histories.
minor comments (7)
  1. [§2.2, Eq. (2.3)] 'Thompson' should be 'Thomson', and 'free election fraction' should be 'free electron fraction'.
  2. [Abstract] 'Theimplications' should read 'The implications' (missing space).
  3. [References] Refs. [47] and [75] appear to be the same SPT measurement, and Refs. [49] and [76] are the same Shaw et al. paper; these duplicate citations should be consolidated.
  4. [Various] Several typos remain: 'reioinzation' in the Fig. 10 caption, 'resuting' in footnote 10, 'semi-analyic' in §5.2, and 'repot' in footnote 3.
  5. [§4.1] The statement that the source-prescription variations preserve the Lyα forest calibration, with deviations up to ~50% at z≈6, would be easier to evaluate if the mean transmission curves for the UV-Bright and Democratic variants were shown alongside Fig. 1, or if the implied change in D3000 were quoted.
  6. [Appendix A] The reduced-speed-of-light validation is performed for two reionization histories with the same n_dot_ion ∝ L_UV source model; a sentence on why the ~1.5% accuracy should carry over to the UV-Bright and Democratic models would be useful.
  7. [§4.2.1] The agreement of P(<τ_eff) with the observed distributions is assessed visually; a quantitative goodness-of-fit measure would make the claim that opacity fluctuations break the degeneracy more concrete.

Circularity Check

0 steps flagged · score 0.0 of 10

No significant circularity: the pkSZ predictions are forward-model outputs from radiative transfer simulations calibrated to external Ly-alpha forest data, and the self-citations for code and approximate methods are validated within the paper.

full rationale

The paper's derivation chain is self-contained against external data. The global ionizing emissivity histories are calibrated, by trial and error, to reproduce the observed Ly-alpha forest mean transmission at z=5-6 (Section 2.1), using external measurements from Refs. [15] and [77]. The pkSZ power spectra are then computed from the resulting reionization morphologies via Eq. (2.4), and the correlations between D3000, z05, and N_gamma/H are emergent simulation outputs rather than fits. No CMB or pkSZ data are used to set the model parameters, so the translation of SPT and ACT limits into upper limits on N_gamma/H is a genuine forward-model inference. The source-clustering prescriptions in Section 4.1 are also inputs, not fits to D3000, and the 35-50% spread in D3000 across prescriptions is an output. The self-citations to FlexRT [52] and the reduced-speed-of-light correction [69] are load-bearing only as computational tools, and Appendix A validates the RSLA mapping against full-speed-of-light runs, showing differences of less than 1.5% in D3000; these citations are therefore independently supported rather than circular. The manuscript's own caveat about the simulated halo mass function being suppressed by up to ~50% near 1e9 M_sun/h is a numerical resolution concern that could affect the Democratic model, but it is a correctness risk, not a circularity of the derivation chain. There are no equations in which a predicted quantity is identical by construction to a fitted input.

Assumptions & free parameters 8 free parameters · 6 assumptions · 0 invented entities

The central claim rests on the calibration of reionization histories to Ly-alpha forest data and on the assumed bracketing of source clustering by three emissivity-halo prescriptions. The free parameters are mostly ad hoc modeling choices rather than fits to the target observable. No new physical entities are introduced. The main external inputs are the UV luminosity functions, Planck tau_e, and SPT/ACT kSZ measurements.

free parameters (8)
  • Global ionizing emissivity history n_dot_ion(z) per model = Tuned per model; shown in Fig 1 (center panels)
    Adjusted by trial and error to match the observed Ly-alpha forest mean transmission at z=5-6; this is the central free function setting each reionization history.
  • Halo mass threshold M_min = 10^9 h^-1 M_sun
    Chosen to maximize the number of z>10 sources; at this mass the simulated halo mass function is suppressed by ~50% relative to Ref [61], so the source population is incomplete.
  • UV-Bright magnitude cutoff M_UV = -18
    Ad hoc choice for the 'oligarch' scenario where only bright galaxies drive reionization; not fitted to data.
  • Democratic source emissivity constant = n_dot proportional to const
    Ad hoc limiting case where all galaxies emit ionizing photons at the same rate, regardless of UV luminosity.
  • Reduced speed of light ratio c_tilde/c = 0.2
    Chosen for computational speed and validated against full-speed-of-light runs in Appendix A (pkSZ power agreement to within 1.5%).
  • Monochromatic photon energy E_gamma = 19 eV
    Chosen to reproduce the frequency-averaged H photoionization cross-section of a power-law spectrum I_nu proportional to nu^-1.5 between 1 and 4 Ry.
  • Stochastic star formation parameters f_SBG and M_SBG_max = f_SBG = 25% or 50%; M_SBG_max = 10^11 h^-1 M_sun
    Ad hoc values for the burstiness test; the high end of the Ref [98] mass range is adopted to maximize the effect.
  • Emissivity-halo evolution ansatz (beta, M_cut) = beta evolves 0 to 1; M_cut evolves -10 to -18 over x_HII ~10-35%
    Illustrative extreme model in Section 5.1 to gauge the upper limit of an evolving source connection; not physical.
assumptions (6)
  • standard math The kSZ angular power spectrum is given by Eq (2.4) from the method of Ref [71], with the transverse ionized momentum power spectrum.
    Invoked in Section 2.2; no derivation repeated here, assumed valid from prior literature.
  • domain assumption Abundance matching uniquely maps halo mass to UV luminosity, so the emissivity-halo prescription sets the clustering of ionizing sources.
    Used throughout Sections 3-4 to generate source populations from the UV luminosity function.
  • domain assumption The reduced speed of light mapping of Ref [69] (Eqs 2.1-2.2) accurately recovers full-speed-of-light reionization histories and observables.
    Validated for pkSZ power to within ~1.5% in Appendix A for two reionization histories; assumed for the rest of the suite.
  • domain assumption The Ly-alpha forest simulation, with resolution and temperature-density corrections, accurately reproduces the observed mean transmission at z=5-6, so calibrating to it fixes the end of reionization.
    The calibration procedure in Section 2.1 and Figs 1, 7-8 relies on the Ly-alpha forward model being faithful.
  • domain assumption The sub-grid LyC opacity model of Refs [55,56] and the I-front heating model of Ref [57] are correct.
    Used in FlexRT to model the IGM opacity and reionization heating; taken from prior work by the same group.
  • domain assumption The missing large-scale velocity mode correction of Eq (2.5) adequately compensates for the finite 200 Mpc/h box; Ref [74] suggests a 10-20% underestimate of D3000 from non-Gaussian corrections.
    Applied in Section 2.2; acknowledged as imperfect but argued not to change broad conclusions.

how reviews work

0 comments
Cite this review

Pith. "Pith review of Probing the ionizing photon output of galaxies near cosmic dawn with the patchy kSZ effect." pith.science (2026). https://pith.science/paper/2SP3Q35T

@misc{pith2026250717817,
  author       = {Pith},
  title        = {Pith review of: Probing the ionizing photon output of galaxies near cosmic dawn with the patchy kSZ effect},
  year         = {2026},
  howpublished = {\url{https://pith.science/paper/2SP3Q35T}},
  note         = {Machine review of arXiv:2507.17817}
}
abstract

A key result from JWST's first cycles is that galaxy formation was well underway by $z=10$. The implications of these early galaxies for reionization are less clear, however. The CMB is one of the few windows into the ionization state of the IGM during reionization's first half, providing an important probe of the ionizing photon sources at those times. Meanwhile, measurements of the Lyman-$\alpha$ forest in the spectra of high-$z$ quasars have improved to the level of tightly constraining the timing of reionization's end. In this paper, we use radiative transfer simulations to explore how measurements of the patchy kinetic Sunyaev Zel'dovich (pkSZ) effect, when combined with Lyman-$\alpha$ forest measurements, can be used to constrain the early stages of reionization and the nature of its sources. For a given source model, we find that the amplitude of the pkSZ power spectra strongly correlates with the start time of reionization, and constrains the number of ionizing photons produced by the high-$z$ source population. Allowing for variations in the source model, this correlation is weakened by a degeneracy between the reionization history and the effects of source clustering. However, we demonstrate two potential ways of breaking this degeneracy using: (1) measurements of large-scale fluctuations in the Ly$\alpha$ forest opacity at $z=5-6$, and/or; (2) the shape of the pkSZ power spectrum measured in future CMB surveys. Models with highly clustered sources yield steeper slopes in the pkSZ power around $\ell = 3,000$, so measurements at additional angular scales can be used to break the history-clustering degeneracy. Our results highlight how future pkSZ measurements will complement JWST observations to improve our understanding of the ionizing sources near cosmic dawn.

Discussion (0). Sign in to comment.

Forward citations

Cited by 1 Pith paper

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score.

  1. Fireworks at Cosmic Dawn: relieving BAO-CMB tensions with the Pop III.1 Flash

    astro-ph.CO 2026-06 unverdicted novelty 6.0 of 10

    A Pop III.1-driven early ionization phase at z=20 yields τ=0.087 consistent with pkSZ and Lyα constraints, potentially resolving BAO-CMB tensions on neutrino mass.

Reference graph

Works this paper leans on

105 extracted references · 20 canonical work pages · cited by 1 Pith paper

  1. [1]

    Kulkarni, L.C

    G. Kulkarni, L.C. Keating, M.G. Haehnelt, S.E.I. Bosman, E. Puchwein, J. Chardin et al., Large Ly α opacity fluctuations and low CMBτ in models of late reionization with large islands of neutral hydrogen extending to z < 5.5, Monthly Notices of the Royal Astronomical Society 485 (2019) L24 [1809.06374]

  2. [2]

    Keating, L.H

    L.C. Keating, L.H. Weinberger, G. Kulkarni, M.G. Haehnelt, J. Chardin and D. Aubert,Long troughs in the Lyman-α forest below redshift 6 due to islands of neutral hydrogen, Monthly Notices of the Royal Astronomical Society491 (2020) 1736 [1905.12640]

  3. [3]

    Nasir and A

    F. Nasir and A. D’Aloisio,Observing the tail of reionization: neutral islands in the z = 5.5 Lyman-α forest, Monthly Notices of the Royal Astronomical Society494 (2020) 3080 [1910.03570]. – 27 – Figure 14 . Comparing the pkSZ power spectrum from full speed of light (˜c/c = 1) simulations against ˜c/c = 0.2 reduced speed of light simulations with remapped ...

  4. [4]

    Zhu, G.D

    Y. Zhu, G.D. Becker, S.E.I. Bosman, L.C. Keating, H.M. Christenson, E. Bañados et al., Chasing the Tail of Cosmic Reionization with Dark Gap Statistics in the Lyα Forest over 5 < z < 6, The Astrophysical Journal923 (2021) 223 [2109.06295]

  5. [5]

    Zhu, G.D

    Y. Zhu, G.D. Becker, S.E.I. Bosman, L.C. Keating, V. D’Odorico, R.L. Davies et al.,Long Dark Gaps in the Lyβ Forest at z < 6: Evidence of Ultra-late Reionization from XQR-30 Spectra, The Astrophysical Journal932 (2022) 76 [2205.04569]

  6. [6]

    Becker, A

    G.D. Becker, A. D’Aloisio, H.M. Christenson, Y. Zhu, G. Worseck and J.S. Bolton,The mean free path of ionizing photons at 5 < z < 6: evidence for rapid evolution near reionization, Monthly Notices of the Royal Astronomical Society508 (2021) 1853 [2103.16610]

  7. [7]

    Zhu, G.D

    Y. Zhu, G.D. Becker, H.M. Christenson, A. D’Aloisio, S.E.I. Bosman, T. Bakx et al.,Probing Ultralate Reionization: Direct Measurements of the Mean Free Path over 5 < z < 6, The Astrophysical Journal 955 (2023) 115 [2308.04614]

  8. [8]

    Gaikwad, M.G

    P. Gaikwad, M.G. Haehnelt, F.B. Davies, S.E.I. Bosman, M. Molaro, G. Kulkarni et al., Measuring the photoionization rate, neutral fraction, and mean free path of H I ionizing photons at 4.9≤ z ≤ 6.0 from a large sample of XShooter and ESI spectra, Monthly Notices of the Royal Astronomical Society525 (2023) 4093 [2304.02038]

Show all 105 references
  1. [9]

    Davies, S.E.I

    F.B. Davies, S.E.I. Bosman, P. Gaikwad, F. Nasir, J.F. Hennawi, G.D. Becker et al., Constraints on the Evolution of the Ionizing Background and Ionizing Photon Mean Free Path at the End of Reionization, The Astrophysical Journal965 (2024) 134 [2312.08464]

  2. [10]

    J.T. Roth, A. D’Aloisio, C. Cain, B. Wilson, Y. Zhu and G.D. Becker,The effect of – 28 – reionization on direct measurements of the mean free path, Monthly Notices of the Royal Astronomical Society 530 (2024) 5209 [2311.06348]

  3. [11]

    Satyavolu, G

    S. Satyavolu, G. Kulkarni, L.C. Keating and M.G. Haehnelt,Robustness of direct measurements of the mean free path of ionizing photons in the epoch of reionization, Monthly Notices of the Royal Astronomical Society533 (2024) 676 [2311.06344]

  4. [12]

    Becker, J.S

    G.D. Becker, J.S. Bolton, Y. Zhu and S. Hashemi,Damping wing absorption associated with a giant Lyα trough at z <6: direct evidence for late-ending reionization, arXiv e-prints (2024) arXiv:2405.08885 [2405.08885]

  5. [13]

    Zhu, G.D

    Y. Zhu, G.D. Becker, S.E.I. Bosman, C. Cain, L.C. Keating, F. Nasir et al.,Damping Wing-Like Features in the Stacked Lyα Forest: Potential Neutral Hydrogen Islands atz <6, arXiv e-prints (2024) arXiv:2405.12275 [2405.12275]

  6. [14]

    Spina, S.E.I

    B. Spina, S.E.I. Bosman, F.B. Davies, P. Gaikwad and Y. Zhu,Damping wings in the Lyman-α forest: a model-independent measurement of the neutral fraction at 5.4<z<6.1, arXiv e-prints (2024) arXiv:2405.12273 [2405.12273]

  7. [15]

    Bosman, F.B

    S.E.I. Bosman, F.B. Davies, G.D. Becker, L.C. Keating, R.L. Davies, Y. Zhu et al.,Hydrogen reionization ends by z = 5.3: Lyman-α optical depth measured by the XQR-30 sample, Monthly Notices of the Royal Astronomical Society514 (2022) 55 [2108.03699]

  8. [16]

    Y. Qin, A. Mesinger, D. Prelogović, G. Becker, M. Bischetti, S. Bosman et al.,Percent-level timing of reionisation: Self-consistent, implicit-likelihood inference from XQR-30+ Lyα forest data, Publ. Astron. Soc. As42 (2025) e049 [2412.00799]

  9. [17]

    C. Cain, A. Van Engelen, K.S. Croker, D. Kramer, A. D’Aloisio and G. Lopez,The CMB optical depth constrains the duration of reionization, arXiv e-prints (2025) arXiv:2505.15899 [2505.15899]

  10. [18]

    Donnan, D.J

    C.T. Donnan, D.J. McLeod, J.S. Dunlop, R.J. McLure, A.C. Carnall, R. Begley et al.,The evolution of the galaxy UV luminosity function at redshifts z = 8 - 15 from deep JWST and ground-based near-infrared imaging, Monthly Notices of the Royal Astronomical Society518 (2023) 6011...

  11. [19]

    Bouwens, G

    R. Bouwens, G. Illingworth, P. Oesch, M. Stefanon, R. Naidu, I. van Leeuwen et al.,UV luminosity density results at z > 8 from the first JWST/NIRCam fields: limitations of early data sets and the need for spectroscopy, Monthly Notices of the Royal Astronomical Society 523 (202...

  12. [20]

    Castellano, A

    M. Castellano, A. Fontana, T. Treu, E. Merlin, P. Santini, P. Bergamini et al.,Early Results from GLASS-JWST. XIX. A High Density of Bright Galaxies at z≈ 10 in the A2744 Region, The Astrophysical Journal Letters948 (2023) L14 [2212.06666]

  13. [21]

    Pérez-González, L

    P.G. Pérez-González, L. Costantin, D. Langeroodi, P. Rinaldi, M. Annunziatella, O. Ilbert et al.,Life beyond 30: Probing the -20 < MU V< -17 Luminosity Function at 8 < z < 13 with the NIRCam Parallel Field of the MIRI Deep Survey, The Astrophysical Journal Letters 951 (2023) L...

  14. [22]

    Leung, M.B

    G.C.K. Leung, M.B. Bagley, S.L. Finkelstein, H.C. Ferguson, A.M. Koekemoer, P.G. Pérez-González et al.,NGDEEP Epoch 1: The Faint End of the Luminosity Function at z 9-12 from Ultradeep JWST Imaging, The Astrophysical Journal Letters954 (2023) L46 [2306.06244]

  15. [23]

    McLeod and Donnan, C

    D.J. McLeod and Donnan, C. T. and McLure, R. J. and Dunlop, J. S. and Magee, D. and Begley, R. and Carnall, A. C. and Cullen, F. and Ellis, R. S. and Hamadouche, M. L. and Stanton, T. M.,The galaxy UV luminosity function at z = 11 from a suite of public JWST ERS, ERO, and Cycl...

  16. [24]

    Finkelstein, G.C.K

    S.L. Finkelstein, G.C.K. Leung, M.B. Bagley, M. Dickinson, H.C. Ferguson, C. Papovich et al.,The Complete CEERS Early Universe Galaxy Sample: A Surprisingly Slow Evolution of the Space Density of Bright Galaxies at z∼ 8.5–14.5, The Astrophysical Journal Letters 969 (2024) L2 [...

  17. [25]

    Adams, C.J

    N.J. Adams, C.J. Conselice, D. Austin, T. Harvey, L. Ferreira, J. Trussler et al.,EPOCHS. II. The Ultraviolet Luminosity Function from 7.5 < z < 13.5 Using 180 arcmin2 of Deep, Blank Fields from the PEARLS Survey and Public JWST Data, The Astrophysical Journal965 (2024) 169 [2...

  18. [26]

    Whitler, D.P

    L. Whitler, D.P. Stark, M.W. Topping, B. Robertson, M. Rieke, K.N. Hainline et al.,The zrsim9 galaxy UV luminosity function from the JWST Advanced Deep Extragalactic Survey: insights into early galaxy evolution and reionization, arXiv e-prints (2025) arXiv:2501.00984 [2501.00984]

  19. [27]

    Arrabal Haro, M

    P. Arrabal Haro, M. Dickinson, S.L. Finkelstein, J.S. Kartaltepe, C.T. Donnan, D. Burgarella et al.,Confirmation and refutation of very luminous galaxies in the early Universe, Nature 622 (2023) 707 [2303.15431]

  20. [28]

    Endsley, D.P

    R. Endsley, D.P. Stark, L. Whitler, M.W. Topping, B.D. Johnson, B. Robertson et al.,The star-forming and ionizing properties of dwarf z 6-9 galaxies in JADES: insights on bursty star formation and ionized bubble growth, Monthly Notices of the Royal Astronomical Society533 (202...

  21. [29]

    Pahl, M.W

    A.J. Pahl, M.W. Topping, A. Shapley, R. Sanders, N.A. Reddy, L. Clarke et al.,A spectroscopic analysis of the ionizing photon production efficiency in JADES and CEERS: implications for the ionizing photon budget, arXiv e-prints (2024) arXiv:2407.03399 [2407.03399]

  22. [30]

    Simmonds, S

    C. Simmonds, S. Tacchella, K. Hainline, B.D. Johnson, W. McClymont, B. Robertson et al., Low-mass bursty galaxies in JADES efficiently produce ionizing photons and could represent the main drivers of reionization, Monthly Notices of the Royal Astronomical Society527 (2024) 613...

  23. [31]

    Robertson, R.S

    B.E. Robertson, R.S. Ellis, S.R. Furlanetto and J.S. Dunlop,Cosmic Reionization and Early Star-forming Galaxies: A Joint Analysis of New Constraints from Planck and the Hubble Space Telescope, The Astrophysical Journal Letters802 (2015) L19 [1502.02024]

  24. [32]

    Finkelstein, A

    S.L. Finkelstein, A. D’Aloisio, J.-P. Paardekooper, J. Ryan, Russell, P. Behroozi, K. Finlator et al.,Conditions for Reionizing the Universe with a Low Galaxy Ionizing Photon Escape Fraction, The Astrophysical Journal879 (2019) 36 [1902.02792]

  25. [33]

    H. Atek, I. Labbé, L.J. Furtak, I. Chemerynska, S. Fujimoto, D.J. Setton et al.,Most of the photons that reionized the Universe came from dwarf galaxies, Nature 626 (2024) 975 [2308.08540]

  26. [34]

    Muñoz, J

    J.B. Muñoz, J. Mirocha, J. Chisholm, S.R. Furlanetto and C. Mason,Reionization after JWST: a photon budget crisis?, Monthly Notices of the Royal Astronomical Society535 (2024) L37 [2404.07250]

  27. [35]

    Chisholm, A

    J. Chisholm, A. Saldana-Lopez, S. Flury, D. Schaerer, A. Jaskot, R. Amorín et al.,The far-ultraviolet continuum slope as a Lyman Continuum escape estimator at high redshift, Monthly Notices of the Royal Astronomical Society517 (2022) 5104 [2207.05771]

  28. [36]

    Simmonds, S

    C. Simmonds, S. Tacchella, K. Hainline, B.D. Johnson, D. Puskás, B. Robertson et al., Ionizing properties of galaxies in JADES for a stellar mass complete sample: resolving the cosmic ionizing photon budget crisis at the Epoch of Reionization, Monthly Notices of the Royal Astr...

  29. [37]

    C. Cain, G. Lopez, A. D’Aloisio, J.B. Munoz, R.A. Jansen, R.A. Windhorst et al.,Chasing – 30 – the beginning of reionization in the JWST era, arXiv e-prints (2024) arXiv:2409.02989 [2409.02989]

  30. [38]

    Abdurashidova, T

    HERA Collaboration, Z. Abdurashidova, T. Adams, J.E. Aguirre, P. Alexander, Z.S. Ali et al., Improved Constraints on the 21 cm EoR Power Spectrum and the X-Ray Heating of the IGM with HERA Phase I Observations, The Astrophysical Journal945 (2023) 124 [2210.04912]

  31. [39]

    Nunhokee, D

    C.D. Nunhokee, D. Null, C.M. Trott, N. Barry, Y. Qin, R.B. Wayth et al.,Limits on the 21 cm power spectrum at z=6.5-7.0 from MWA observations, arXiv e-prints (2025) arXiv:2505.09097 [2505.09097]

  32. [40]

    Umeda, M

    H. Umeda, M. Ouchi, K. Nakajima, Y. Harikane, Y. Ono, Y. Xu et al.,JWST Measurements of Neutral Hydrogen Fractions and Ionized Bubble Sizes atz = 7 − 12 Obtained with Lyα Damping Wing Absorptions in 26 Bright Continuum Galaxies, arXiv e-prints (2023) arXiv:2306.00487 [2306.00487]

  33. [41]

    Witstok, P

    J. Witstok, P. Jakobsen, R. Maiolino, J.M. Helton, B.D. Johnson, B.E. Robertson et al., Witnessing the onset of reionization through lyman-alpha emission at redshift 13, Nature 639 (2025) 897

  34. [42]

    Mason, Z

    C.A. Mason, Z. Chen, D.P. Stark, T.-Y. Lu, M. Topping and M. Tang,Constraints on the z ∼ 6 − 13 intergalactic medium from JWST spectroscopy of Lyman-alpha damping wings in galaxies, arXiv e-prints (2025) arXiv:2501.11702 [2501.11702]

  35. [43]

    Hassan and M

    S. Hassan and M. Gronke,Can Galaxy Evolution Mimic Cosmic Reionization?, The Astrophysical Journal 908 (2021) 219 [2010.00023]

  36. [44]

    Aghanim, Y

    Planck Collaboration, N. Aghanim, Y. Akrami, M. Ashdown, J. Aumont, C. Baccigalupi et al.,Planck 2018 results. VI. Cosmological parameters, Astronomy and Astrophysics641 (2020) A6 [1807.06209]

  37. [46]

    X. Wu, M. McQuinn, D. Eisenstein and V. Iršič,The high-redshift tail of stellar reionization in LCDM is beyond the reach of the low-ℓ CMB, Monthly Notices of the Royal Astronomical Society 508 (2021) 2784 [2105.08737]

  38. [47]

    Reichardt, S

    C.L. Reichardt, S. Patil, P.A.R. Ade, A.J. Anderson, J.E. Austermann, J.S. Avva et al.,An improved measurement of the secondary cosmic microwave background anisotropies from the SPT-SZ + SPTpol surveys, 2002.06197

  39. [48]

    Calabrese, R

    E. Calabrese, R. Hložek, N. Battaglia, J.R. Bond, F. de Bernardis, M.J. Devlin et al., Precision epoch of reionization studies with next-generation CMB experiments, J. Cosmol. Astropart. Phys.2014 (2014) 010

  40. [50]

    Beringue, K.M

    B. Beringue, K.M. Surrao, J.C. Hill, Z. Atkins, N. Battaglia, B. Bolliet et al.,The atacama cosmology telescope: DR6 power spectrum foreground model and validation, arXiv [astro-ph.CO] (2025)

  41. [51]

    Jain, T.R

    D. Jain, T.R. Choudhury, S. Raghunathan and S. Mukherjee,Probing the physics of reionization using kSZ power spectrum from current and upcoming CMB surveys, 2311.00315

  42. [52]

    Cain and A

    C. Cain and A. D’Aloisio,FlexRT – a fast and flexible cosmological radiative transfer code for reionization studies I: Code validation, arXiv [astro-ph.CO](2024)

  43. [53]

    Abel and B.D

    T. Abel and B.D. Wandelt,Adaptive ray tracing for radiative transfer around point sources, Monthly Notices of the Royal Astronomical Society330 (2002) L53 [astro-ph/0111033]. – 31 –

  44. [54]

    Trac and R

    H. Trac and R. Cen,Radiative transfer simulations of cosmic reionization. i. methodology and initial results, Astrophys. J. 671 (2007) 1

  45. [55]

    C. Cain, A. D’Aloisio, N. Gangolli and G.D. Becker,A short mean free path at z = 6 favors late and rapid reionization by faint galaxies, ApJL 917 (2021) L37

  46. [56]

    C. Cain, A. D’Aloisio, N. Gangolli and M. McQuinn,The morphology of reionization in a dynamically clumpy universe, Mon. Not. R. Astron. Soc.522 (2023) 2047

  47. [57]

    D’Aloisio, M

    A. D’Aloisio, M. McQuinn, O. Maupin, F.B. Davies, H. Trac, S. Fuller et al.,Heating of the Intergalactic Medium by Hydrogen Reionization, The Astrophysical Journal874 (2019) 154 [1807.09282]

  48. [58]

    D’Aloisio, M

    A. D’Aloisio, M. McQuinn, F.B. Davies and S.R. Furlanetto,Large fluctuations in the high-redshift metagalactic ionizing background, Monthly Notices of the Royal Astronomical Society 473 (2018) 560 [1611.02711]

  49. [59]

    Trac and U.-L

    H. Trac and U.-L. Pen,A moving frame algorithm for high mach number hydrodynamics, New Astron. 9 (2004) 443

  50. [60]

    C. Cain, A. D’Aloisio, G. Lopez, N. Gangolli and J.T. Roth,On the rise and fall of galactic ionizing output at the end of reionization, Monthly Notices of the Royal Astronomical Society 531 (2024) 1951 [2311.13638]

  51. [61]

    H. Trac, R. Cen and P. Mansfield,SCORCH I: The Galaxy-Halo Connection in the First Billion Years, The Astrophysical Journal813 (2015) 54 [1507.02685]

  52. [62]

    Gangolli, A

    N. Gangolli, A. D’Aloisio, C. Cain, G.D. Becker and H. Christenson,On the correlation between Lyα forest opacity and galaxy density in late reionization models, arXiv [astro-ph.CO] (2024) arXiv:2408.08358

  53. [63]

    Bouwens, P.A

    R.J. Bouwens, P.A. Oesch, M. Stefanon, G. Illingworth, I. Labbé, N. Reddy et al.,New Determinations of the UV Luminosity Functions from z 9 to 2 Show a Remarkable Consistency with Halo Growth and a Constant Star Formation Efficiency, The Astronomical Journal 162 (2021) 47 [2102.07775]

  54. [64]

    Adams, C.J

    N.J. Adams, C.J. Conselice, D. Austin, T. Harvey, L. Ferreira, J. Trussler et al.,EPOCHS. II. the ultraviolet luminosity function from 7.5 < z < 13.5 using 180 arcmin2 of deep, blank fields from the PEARLS survey and public JWST data, Astrophys. J. 965 (2024) 169

  55. [65]

    Donnan, R.J

    C.T. Donnan, R.J. McLure, J.S. Dunlop, D.J. McLeod, D. Magee, K.Z. Arellano-Córdova et al.,JWST PRIMER: A new multi-field determination of the evolving galaxy UV luminosity function at redshiftsz ≃ 9 − 15, arXiv [astro-ph.GA](2024) 3222

  56. [66]

    T. Tepper-García,Voigt profile fitting to quasar absorption lines: an analytic approximation to the Voigt-Hjerting function, Monthly Notices of the Royal Astronomical Society369 (2006) 2025 [astro-ph/0602124]

  57. [67]

    Gnedin,On the Proper Use of the Reduced Speed of Light Approximation, The Astrophysical Journal 833 (2016) 66 [1607.07869]

    N.Y. Gnedin,On the Proper Use of the Reduced Speed of Light Approximation, The Astrophysical Journal 833 (2016) 66 [1607.07869]

  58. [68]

    Deparis, D

    N. Deparis, D. Aubert, P. Ocvirk, J. Chardin and J. Lewis,Impact of the reduced speed of light approximation on ionization front velocities in cosmological simulations of the epoch of reionization, Astronomy and Astrophysics622 (2019) A142 [1803.01634]

  59. [69]

    Cain,Accurate simulations of reionization using the reduced speed of light approximation, arXiv [astro-ph.CO](2024)

    C. Cain,Accurate simulations of reionization using the reduced speed of light approximation, arXiv [astro-ph.CO](2024)

  60. [70]

    Sunyaev and Y.B

    R.A. Sunyaev and Y.B. Zeldovich,The velocity of clusters of galaxies relative to the microwave background. the possibility of its measurement, Mon. Not. R. Astron. Soc.190 (1980) 413

  61. [71]

    Park, P.R

    H. Park, P.R. Shapiro, E. Komatsu, I.T. Iliev, K. Ahn and G. Mellema,The kinetic – 32 – sunyaev-zel’dovich effect as a probe of the physics of cosmic reionization: the effect of self-regulated reionization, arXiv [astro-ph.CO](2013)

  62. [72]

    Ma and J.N

    C.-P. Ma and J.N. Fry,Nonlinear kinetic Sunyaev-Zeldovich effect, Phys. Rev. Lett.88 (2002) 211301

  63. [73]

    Lewis, A

    A. Lewis, A. Challinor and A. Lasenby,Efficient computation of cosmic microwave background anisotropies in closed Friedmann-Robertson-Walker models, Astrophys. J. 538 (2000) 473

  64. [74]

    Alvarez,The kinetic Sunyaev-Zel’dovich effect from reionization: Simulated full-sky maps at arcminute resolution, Astrophys

    M.A. Alvarez,The kinetic Sunyaev-Zel’dovich effect from reionization: Simulated full-sky maps at arcminute resolution, Astrophys. J. 824 (2016) 118

  65. [75]

    Reichardt, S

    C.L. Reichardt, S. Patil, P.A.R. Ade, A.J. Anderson, J.E. Austermann, J.S. Avva et al.,An improved measurement of the secondary cosmic microwave background anisotropies from the SPT-SZ + SPTpol surveys, arXiv [astro-ph.CO](2020)

  66. [76]

    Shaw, D.H

    L.D. Shaw, D.H. Rudd and D. Nagai,Deconstructing the kinetic SZ power spectrum, Astrophys. J. 756 (2012) 15

  67. [77]

    Becker and J.S

    G.D. Becker and J.S. Bolton,New measurements of the ionizing ultraviolet background over 2 < z < 5 and implications for hydrogen reionization, Monthly Notices of the Royal Astronomical Society 436 (2013) 1023 [1307.2259]

  68. [78]

    Tristram, A.J

    M. Tristram, A.J. Banday, M. Douspis, X. Garrido, K.M. Górski, S. Henrot-Versillé et al., Cosmological parameters derived from the final Planck data release (PR4), Astronomy and Astrophysics 682 (2024) A37 [2309.10034]

  69. [79]

    Battaglia, A

    N. Battaglia, A. Natarajan, H. Trac, R. Cen and A. Loeb,Reionization on large scales III: Predictions for low-ell cosmic microwave background polarization and high-ell kinetic Sunyaev-Zel’dovich observables, 1211.2832

  70. [80]

    N. Chen, H. Trac, S. Mukherjee and R. Cen,Patchy kinetic Sunyaev-Zel’dovich effect with controlled reionization history and morphology, 2203.04337

  71. [81]

    Nikolić, A

    I. Nikolić, A. Mesinger, Y. Qin and A. Gorce,Inferring reionization and galaxy properties from the patchy kinetic Sunyaev-Zel’dovich signal, arXiv e-prints (2023) arXiv:2307.01265

  72. [82]

    McQuinn, S.R

    M. McQuinn, S.R. Furlanetto, L. Hernquist, O. Zahn and M. Zaldarriaga,The kinetic Sunyaev-Zel’dovich effect from reionization, astro-ph/0504189

  73. [83]

    Mesinger, M

    A. Mesinger, M. McQuinn and D.N. Spergel,The kinetic Sunyaev-Zel’dovich signal from inhomogeneous reionization: a parameter space study, Mon. Not. R. Astron. Soc.422 (2012) 1403

  74. [84]

    Gorce, S

    A. Gorce, S. Ilić, M. Douspis, D. Aubert and M. Langer,Improved constraints on reionisation from CMB observations: A parameterisation of the kSZ effect, arXiv [astro-ph.CO](2020)

  75. [85]

    Choudhury, S

    T.R. Choudhury, S. Mukherjee and S. Paul,Cosmic microwave background constraints on a physical model of reionization, Mon. Not. R. Aston. Soc. Lett.501 (2020) L7

  76. [86]

    Naidu, S

    R.P. Naidu, S. Tacchella, C.A. Mason, S. Bose, P.A. Oesch and C. Conroy,Rapid reionization by the oligarchs: The case for massive, UV-bright, star-forming galaxies with high escape fractions, Astrophys. J. 892 (2020) 109

  77. [87]

    Matthee, D

    J. Matthee, D. Sobral, M. Hayes, G. Pezzulli, M. Gronke, D. Schaerer et al.,The X-SHOOTER lyman α survey at z = 2 (XLS-z2) i: what makes a galaxy a lymanα emitter?, Mon. Not. R. Astron. Soc.505 (2021) 1382

  78. [88]

    S. Paul, S. Mukherjee and T.R. Choudhury,Inevitable imprints of patchy reionization on the cosmic microwave background anisotropy, 2005.05327

  79. [89]

    Iliev, G

    I.T. Iliev, G. Mellema, P.R. Shapiro and U.-L. Pen,Self-regulated reionization, Monthly Notices of the Royal Astronomical Society376 (2007) 534 [astro-ph/0607517]. – 33 –

  80. [90]

    Ocvirk, J.S.W

    P. Ocvirk, J.S.W. Lewis, N. Gillet, J. Chardin, D. Aubert, N. Deparis et al.,Lyman-alpha opacities at z = 4-6 require low mass, radiatively-suppressed galaxies to drive cosmic reionization, Monthly Notices of the Royal Astronomical Society507 (2021) 6108 [2105.01663]

  81. [91]

    Kravtsov and V

    A. Kravtsov and V. Belokurov,Stochastic star formation and the abundance ofz >10 UV-bright galaxies, arXiv [astro-ph.GA](2024)

  82. [92]

    Looser, F

    T.J. Looser, F. D’Eugenio, R. Maiolino, S. Tacchella, M. Curti, S. Arribas et al.,JADES: Differing assembly histories of galaxies – observational evidence for bursty SFHs and (mini-)quenching in the first billion years of the universe, arXiv [astro-ph.GA](2023) A88

  83. [93]

    Kokorev, O.A.C

    V. Kokorev, O.A.C. Ortiz, A.J. Taylor, S.L. Finkelstein, P.A. Haro, M. Dickinson et al., Capers observations of two uv-bright galaxies at z>10. more evidence for bursting star formation in the early universe, arXiv [astro-ph.GA](2025) arXiv:2504.12504

  84. [94]

    Stark, M.W

    D.P. Stark, M.W. Topping, R. Endsley and M. Tang,Observations of the first galaxies in the era of JWST, arXiv [astro-ph.GA](2025)

  85. [95]

    J.W. Cole, C. Papovich, S.L. Finkelstein, M.B. Bagley, M. Dickinson, K.G. Iyer et al., CEERS: Increasing scatter along the star-forming main sequence indicates early galaxies form in bursts, arXiv [astro-ph.GA](2023)

  86. [96]

    Topping, D.P

    M.W. Topping, D.P. Stark, P. Senchyna, Z. Chen, A. Zitrin, R. Endsley et al.,Deep rest-UV JWST/NIRSpec spectroscopy of early galaxies: the demographics of CIV and N-emitters in the reionization era, arXiv [astro-ph.GA](2024)

  87. [97]

    Ciesla, D

    L. Ciesla, D. Elbaz, O. Ilbert, V. Buat, B. Magnelli, D. Narayanan et al.,Identification of a transition from stochastic to secular star formation aroundz = 9 with JWST, arXiv [astro-ph.GA] (2023) A128

  88. [98]

    Furlanetto and J

    S.R. Furlanetto and J. Mirocha,Bursty star formation during the cosmic dawn driven by delayed stellar feedback, arXiv [astro-ph.GA](2021)

  89. [99]

    Mirocha and S.R

    J. Mirocha and S.R. Furlanetto,Balancing the efficiency and stochasticity of star formation with dust extinction in z > 10 galaxies observed by JWST, arXiv [astro-ph.GA](2022)

  90. [100]

    Sun, C.-A

    G. Sun, C.-A. Faucher-Giguère, C.C. Hayward, X. Shen, A. Wetzel and R.K. Cochrane, Bursty star formation naturally explains the abundance of bright galaxies at cosmic dawn, arXiv [astro-ph.GA](2023)

  91. [101]

    Sun, C.-A

    G. Sun, C.-A. Faucher-Giguère, C.C. Hayward and X. Shen,Seen and unseen: bursty star formation and its implications for observations of high-redshift galaxies with JWST, arXiv [astro-ph.GA] (2023)

  92. [102]

    Sun, J.B

    G. Sun, J.B. Muñoz, J. Mirocha and C.-A. Faucher-Giguère,Constraining bursty star formation histories with galaxy UV and Hα luminosity functions and clustering, arXiv [astro-ph.GA] (2024)

  93. [103]

    Andalman, R

    Z.L. Andalman, R. Teyssier and A. Dekel,On the origin of the high star-formation efficiency in massive galaxies at cosmic dawn, arXiv [astro-ph.GA](2024)

  94. [104]

    Gelli, C

    V. Gelli, C. Mason and C.C. Hayward,The impact of mass-dependent stochasticity at cosmic dawn, arXiv [astro-ph.GA](2024)

  95. [105]

    Abdul-Karim, J

    DESI Collaboration, M. Abdul-Karim, J. Aguilar, S. Ahlen, S. Alam, L. Allen et al.,DESI DR2 results II: Measurements of baryon acoustic oscillations and cosmological constraints, arXiv [astro-ph.CO](2025) arXiv:2503.14738

  96. [106]

    Jhaveri, T

    T. Jhaveri, T. Karwal and W. Hu,Turning a negative neutrino mass into a positive optical depth, arXiv [astro-ph.CO](2025) arXiv:2504.21813. – 34 –

  97. [107]

    Sailer, G.S

    N. Sailer, G.S. Farren, S. Ferraro and M. White,Dispuτable: the high cost of a low optical depth, arXiv [astro-ph.CO](2025) arXiv:2504.16932. – 35 –

Pith tools

Reviewed August 6, 2026 · model on record in the stance chip above.