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REVIEW 4 major objections 6 minor 60 references

Effect of Primordial Black Holes on the global 21-cm signal

T0 review · 4 major / 6 minor · reviewed 2026-08-03 · deepseek-v4-flash

Pith's one-line read This paper argues that if primordial black holes seed the early active galactic nuclei seen at redshifts 10–10.4, their X-ray emission would heat the intergalactic medium and make the cosmic 21-cm absorption trough noticeably shallower, wit

desk verdict A conditional but useful update: the global 21-cm trough is shallower if z~10 AGNs are PBH-seeded with efficient X-ray escape; the size of the effect is set by an unconstrained normalization. read the letter →

arxiv 2601.10304 v2 pith:GMU26B4U submitted 2026-01-15 astro-ph.CO

classification astro-ph.CO PACS 98.80.-k
keywords primordialblackholesglobal21-cmsignalX-rayheatinghigh-redshiftAGNcosmicdawnreionizationintergalacticmedium
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 what happens to the sky-averaged 21-cm signal if the active galactic nuclei observed at redshifts 10–10.4 are powered by primordial black holes rather than ordinary stellar-remnant seeds. Using a semi-analytic model in which PBH-seeded galaxies accrete gas at early times, it finds that these systems dominate the X-ray budget across z≈34–5, heating the intergalactic medium and flattening the 21-cm absorption trough. With equal X-ray escape fractions, the trough shifts from roughly −300 mK at z≈16 (star-forming galaxies only) to −200 mK at z≈18 (star-forming plus PBH). PBHs contribute few ionizing photons, so the reionization history is unchanged. The result matters because it turns the global 21-cm signal into a new, observable probe of the primordial black hole hypothesis.

What carries the argument

The argument runs on a semi-analytic two-population model. The star-forming galaxy component follows the standard halo mass function with an observation-calibrated star formation efficiency that matches the high-redshift UV luminosity function; the PBH component uses a log-normal mass function (characteristic mass 10^3.65 solar masses, width σ=0.7) normalized to the observed AGN number density at z≈10, assumes Eddington-limited accretion at 25% of Eddington with radiative efficiency 0.057, and converts bolometric luminosity into Ly-α, ionizing, and X-ray photon rates using standard spectral-index and bolometric-correction relations. These photon budgets feed the standard equations for the 21

What would settle it

A measurement of the global 21-cm spectrum showing a deep (~ −300 mK) absorption trough at z≈16, with no flattening at z≈18, would rule out the maximal PBH X-ray escape case; conversely, a survey that establishes stellar-remnant seeding for the bulk of the z≈10 AGN population would falsify the PBH normalization.

Watch

Extended reading notes

Core claim

The central claim is that a PBH-seeded galaxy population, normalized to match the observed AGN number density at z≈10 and stated to be consistent with existing cosmological and astrophysical constraints, can significantly alter the redshift evolution of the global 21-cm signal. The dominant effect is X-ray heating: PBH-seeded AGNs dominate the X-ray emissivity across z≈34–5, so with a PBH X-ray escape fraction of unity the absorption trough is reduced from about −300 mK at z≈16 in the star-forming-only case to about −200 mK at z≈18. A secondary effect appears at z≈25–20, where PBH-produced Ly-α photons slightly change the early signal. Because the PBH contribution to ionizing photons is 2–3

Load-bearing premise

The whole effect rests on normalizing the PBH population by attributing every observed AGN at z≈10 to PBH-seeded galaxies; if most of those AGNs are instead powered by stellar-remnant black holes, or if the PBH abundance is lower than assumed, the predicted X-ray heating and the 21-cm flattening collapse.

Editorial extensions

If this is right

  • The global 21-cm spectrum becomes a discriminator for primordial black holes: a trough near −200 mK at z≈18, instead of −300 mK at z≈16, would be the signature of PBH-seeded X-ray heating.
  • Reionization constraints do not need to change: the PBH model adds at most a negligible number of ionizing photons at z<10, so existing measurements of the ionized fraction remain consistent.
  • The early rise of the 21-cm signal around z≈25–20 carries information about Ly-α emission from PBH-seeded systems, independent of the X-ray escape fraction.
  • Future global 21-cm experiments should treat a PBH-seeded AGN population as a standard source class alongside star-forming galaxies when interpreting trough depth and timing.
  • If X-ray escape from PBH-seeded galaxies is less than unity, the predicted signal converges to the star-forming-only case, so the model's impact is directly tied to that unknown parameter.

Reading between the lines

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

  • The normalization is the fragile point: the model assigns the entire observed AGN abundance at z~10 to PBH seeds. If future observations show those AGNs grow from ordinary stellar-remnant seeds, the predicted X-ray excess — and the 21-cm trough flattening — largely disappears. This makes the early AGN sample an indirect but direct test of PBH abundance.
  • A complementary discriminator would be the amplitude of the UV luminosity function at z>10: PBH-seeded galaxies with early accretion should have distinct number counts at the very bright end, which current 21-cm data can only constrain statistically.
  • The model predicts a correlation between X-ray heating and the Ly-α–driven shoulder at z≈25–20; simultaneous measurement of both features in a single spectrum could separate PBH heating from other early heating sources.
  • If the observed 21-cm trough turns out deeper than any star-forming-only model permits, the PBH model as constructed here would not help — it makes the trough shallower — so a deep trough would favour other explanations, not PBHs.
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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

4 major / 6 minor

Summary. The paper presents a semi-analytic calculation of the sky-averaged 21-cm signal from z≈34 to z≈5, combining star-forming galaxies with a population of PBH-seeded galaxies whose mass function follows a lognormal form normalized to the number density of JWST-detected AGN at z≈10. Using this two-population model, the author computes the IGM kinetic temperature, Ly-alpha coupling, and reionization history, and compares the global 21-cm signal with and without the PBH component. The headline result is that with the X-ray escape fraction from PBH-seeded galaxies set equal to that of star-forming galaxies (f_PBH_X,esc=1), the extra X-ray heating raises the IGM temperature at z≈15-20 and flattens the absorption trough from about -300 mK at z≈16 (SF-only) to about -200 mK at z≈18 (SF+PBH). The difference shrinks as f_PBH_X,esc is lowered and disappears at f_PBH_X,esc=0.1. Ly-alpha from PBHs dominates at z≈20-30 and produces a small signal difference at z≈25-20; PBH ionizing photons are negligible and reionization is unchanged. The paper concludes that PBHs could have a significant effect on the global 21-cm signal if they are the seeds of the observed high-z AGN and if their X-ray output escapes as efficiently as that of star-forming galaxies.

Significance. The question is timely, and the qualitative mechanism - extra X-ray heating by an early AGN population makes the 21-cm absorption trough shallower - is robust and clearly explained. The model is semi-analytic and transparent, and the author takes care to check the SF-only model against UV luminosity functions and reionization constraints (Appendix A). The 21-cm signal is not used to fit parameters, so the prediction is not circular. The explicit exploration of f_PBH_X,esc in Fig. 2 is a useful sensitivity test. However, the central quantitative claim rests on two unsupported pillars: (i) the normalization of the PBH mass function to the z≈10 AGN number density, which assumes all such AGN are PBH-seeded and continuously active, and (ii) the absence of any quantitative comparison with PBH abundance constraints despite the abstract's assertion of consistency. Because both enter linearly in the X-ray emissivity, the headline -100 mK effect can be removed by plausible changes in either assumption. The paper is therefore a promising proof-of-concept rather than a robust prediction in its current form.

major comments (4)
  1. [§2.2, item 1; Eqs. (5), (11)] The normalization κ of the lognormal mass function is fixed by matching the total PBH number density to the observed z≈10 AGN space density of 10^-5.27 cMpc^-3. This equates the entire high-z AGN population with PBH-seeded galaxies and implicitly assigns every PBH a duty cycle of unity at all redshifts. The abstract's statement that the PBH model is 'consistent with existing cosmological and astrophysical constraints' is not backed by any constraint plot, table, or calculation in the manuscript. Since the PBH X-ray emissivity in Eq. (11) scales linearly with κ, an overestimate of the PBH abundance by a factor of two or three (e.g., if 30-50% of the z≈10 AGN are stellar-seeded, or if accretion is intermittent) is sufficient to erase the claimed trough difference. The manuscript should show the comparison with PBH constraints and explore the sensitivity to κ or to an active/duty-cycle frac
  2. [§3.1, Eq. (12); Fig. 2] The headline result uses f_PBH_X,esc=1, but this parameter is free and no physical motivation is given for equating it with the SF escape fraction. The author's own Fig. 2 shows that the difference between SF-only and SF+PBH is strongly reduced at f_PBH_X,esc=0.5 and essentially vanishes at 0.1. Because f_PBH_X,esc multiplies the same emissivity as κ, the central -100 mK effect is a parameter choice as much as a prediction. The paper should either justify f_PBH_X,esc≈1 with an ISM/CGM model or present the result as an upper-limit scenario, with the f_PBH_X,esc=0.1 case as the null result.
  3. [§2.2, Eq. (5); Eq. (11)] The mass function as written has dN/dM_PBH ∝ M^-2 exp[...], whereas a lognormal in ln M normally gives dN/dM ∝ M^-1 exp[...]. In addition, the integration limits M_min,PBH and M_max,PBH in Eq. (11) are never specified. With a 1/M^2 form the integral is sensitive to the lower cutoff, making the model non-reproducible. The author should state the limits, correct the mass-function normalization if needed, and briefly test the sensitivity to the assumed shape (e.g., the power-law mass function used by Dayal & Maiolino 2025). The paper itself acknowledges in Sec. 5 that the lognormal choice is not rigorously justified.
  4. [§3.3, Eq. (16)] The recombination term appears with a positive sign: dQ_HII/dt = ... + Q_HII α_B C n_H,com (1+z)^3. This has the wrong sign; recombinations should decrease Q_HII. If the code followed this equation, the reionization history would not match the data in Appendix A; if the text is a typo, it should be corrected. Please verify which is the case and fix the equation.
minor comments (6)
  1. [Eq. (8)] The expression for T_b contains an unmatched parenthesis after x_HI: '10.1 mK x HI(z))' should be cleaned up.
  2. [Eq. (2)] In the parameter set, ')' is used instead of '}' at the end: '{f_0, M_p, β, γ) = {0.16, ...}'. Also Eq. (1) uses both M_h and Mh inconsistently.
  3. [Sec. 2.1, item 2] The metallicity is given as '0.05 M⊙'; presumably this means Z=0.05 Z⊙, not a stellar mass. Please clarify.
  4. [Sec. 3.1 text] The phrase 'uncertainties in the ϵ_X−ρ_SFR relationship, i.e., eqn-12' should refer to Eq. (10), not Eq. (12).
  5. [Sec. 4 text] The phrase 'over the redshift range 34≳z≲5' mixes the direction of inequalities; should be something like 5≲z≲34 or 34≳z≳5.
  6. [Sec. 5 bullets] In the first bullet, 'f_Sf_X,esc' has a typo (should be f_SF_X,esc). Also in the references, 'Dayal & maiolino 2025' should be 'Dayal & Maiolino 2025'.

Circularity Check

0 steps flagged · score 0.0 of 10

No significant circularity: the 21-cm signal is a forward prediction from an assumed PBH population; no model parameter is fitted to the 21-cm observable.

full rationale

The derivation chain is a forward model. The SF galaxy population is calibrated to UVLF and to reionization via f_esc=0.2 (Sec. 2.1); the PBH population is normalized to the observed z~10 AGN number density (Sec. 2.2, Eq. 5); X-ray, Ly-alpha, and ionizing emissivities (Eqs. 10-14) then feed the 21-cm brightness temperature (Eqs. 8-9, 16). The target observable, the 21-cm signal, is never used to fit kappa or any PBH parameter, so the headline trough difference in Fig. 2 is not equivalent to an input by construction. The paper does rely on the Dayal & maiolino (2025) analytical PBH model, which was itself calibrated on the same JWST AGN observations used to set kappa; however, this is an imported model assumption rather than a circular derivation, because the 21-cm result is a physical consequence of that assumed source population, not a restatement of the AGN number density. The abstract's claim that the PBH model is 'consistent with existing cosmological and astrophysical constraints' is asserted without showing the constraints, and the paper itself states there is 'no rigorous justification for choosing the lognormal mass function' (Sec. 5). These are support gaps and model limitations, not circular steps. The reionization consistency in Appendix A is a calibration check for f_esc, not an independent prediction, but it does not control the PBH-vs-SF trough difference, which is driven by X-ray heating. Overall, the central 21-cm prediction is self-contained given the stated assumptions.

Assumptions & free parameters 10 free parameters · 7 assumptions · 0 invented entities

The central prediction rests on roughly ten parameters, most inherited from earlier fits or fixed by hand; the key unconstrained parameter (f_PBH_X,esc) is varied to produce the headline effect. The PBH population itself is normalized to the JWST AGN number density, so the model's X-ray output is anchored to those observations rather than independently predicted.

free parameters (10)
  • f_edd = 0.25
    Eddington fraction for PBH accretion; taken from Dayal & maiolino (2025); sets the bolometric luminosity and hence X-ray output.
  • M_c (PBH characteristic mass) = 10^3.65 Msun
    Set equal to the assumed average seed mass; controls the mass scale of the log-normal PBH mass function.
  • sigma (PBH mass function width) = 0.7
    Taken from Matteri et al. (2025); no independent justification in this paper.
  • kappa (PBH mass function normalization) = chosen to match observed AGN number density 10^-5.27 cMpc^-3 at z~10
    Normalizes the PBH population to the JWST AGN density, thus setting the X-ray emissivity.
  • f_PBH_X,esc = varied 0.1-1.0
    The key free parameter; the headline 'significant impact' is obtained only for values near 1.
  • f_esc (SF ionizing escape fraction) = 0.2
    Tuned so the model matches reionization constraints (Appendix A).
  • f_star parameters {f0, Mp, beta, gamma} = {0.16, 10^11.7, 0.9, 0.65}
    Data-driven fit to JWST UV luminosity functions (Donnan et al. 2024).
  • f_h = 0.2
    Fraction of X-ray energy heating the IGM; fixed from Furlanetto et al. (2006).
  • f_SF_X,esc = 1.0
    SF X-ray escape fraction fixed to 1; the paper states uncertainties can be absorbed into this parameter.
  • f_alpha (Ly-alpha escape fractions) = 1.0 for both SF and PBH
    Set to 1 for simplicity; the paper admits these should be varied.
assumptions (7)
  • domain assumption The Dayal & maiolino (2025) analytic model of PBH-seeded galaxy formation and growth is adopted wholesale.
    Sec. 2.2 states the model 'closely follows' that work; the accretion history, dust optical depth, and ionizing escape fractions are imported from it.
  • domain assumption The observed AGN number density at z~10 is attributed entirely to PBH-seeded galaxies.
    Sec. 2.2 item 1: kappa is fixed by matching 10^-5.27 cMpc^-3 from Kovács et al. (2024) and Bogdán et al. (2024).
  • ad hoc to paper The PBH mass function is log-normal with sigma=0.7 and M_c=10^3.65 Msun.
    Sec. 2.2 item 1 and Sec. 5: authors admit 'there is no rigorous justification for choosing the lognormal mass function'.
  • ad hoc to paper The X-ray escape fraction of PBH-seeded galaxies can be as high as that of SF galaxies.
    Sec. 3.1 and Sec. 4: f_PBH_X,esc is varied 0.1-1.0; the main result requires the high end.
  • domain assumption The local Mineo et al. (2012) X-ray-SFR relation holds at z~30-7 for star-forming galaxies.
    Sec. 3.1, Eq. (10): used to compute SF X-ray emissivity at high redshift.
  • domain assumption Starburst99 synthetic spectra with Salpeter IMF and metallicity 0.05 Msun represent high-z stellar populations.
    Sec. 2.1 item 2.
  • domain assumption Tinker et al. (2008) halo mass function and atomic-cooling threshold (T_vir=10^4 K) determine the star-forming halo population.
    Sec. 2.1 item 1.

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Cite this review

Pith. "Pith review of Effect of Primordial Black Holes on the global 21-cm signal." pith.science (2026). https://pith.science/paper/GMU26B4U

@misc{pith2026260110304,
  author       = {Pith},
  title        = {Pith review of: Effect of Primordial Black Holes on the global 21-cm signal},
  year         = {2026},
  howpublished = {\url{https://pith.science/paper/GMU26B4U}},
  note         = {Machine review of arXiv:2601.10304}
}
read the original abstract

The 21-cm global signal, a treasure trove of information about the nature of the first luminous sources of the Universe, has traditionally been modelled assuming that these early sources were predominantly star-forming galaxies. However, recent observations by the James Webb Space Telescope (JWST) have revealed several AGNs as early as z ~ 10 - 10.4 . In light of this, it is important to investigate the contribution of such AGNs to the 21-cm signal. Assuming that these AGNs are seeded by Primordial Black Holes (PBHs) and employing an analytical PBH model, consistent with existing cosmological and astrophysical constraints, we show that these exotic objects can have a significant impact on the redshift evolution of the global signal.

Figures

Figures reproduced from arXiv: 2601.10304 by the authors.

Figure 1
Figure 1. Redshift evolution of key quantities that affect the 21-cm signal. The orange, blue, and green curves correspond to contributions from PBH-only, SF-only, and SF+PBH galaxies, respectively. Panel (a): Intrinsic X-ray emissivity as a function of redshift. In this case, PBH-only dominates over SF-only across the entire redshift range. Panel (b): Evolution of the Ly-α background flux. While dominated by PBH-seeded sourc… view at source ↗
Figure 2
Figure 2. Redshift evolution of the global 21-cm signal for different values of f PBH X,esc, as indicated in the plots. The blue and green curves correspond to the SF-only and SF+PBH scenarios, respectively. In the leftmost panel, with f PBH X,esc = 1, the SF-only case exhibits a much deeper absorption trough compared to the SF+PBH scenario. This difference arises because the additional X-ray emission from PBH-seeded galaxies… view at source ↗

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