REVIEW 4 major objections 6 minor 1 cited by
The eROSITA view on the halo mass-temperature relation: From low-mass groups to massive clusters
T0 review · 4 major / 6 minor · reviewed 2026-08-16 · deepseek-v4-flash
Pith's one-line read The mass–temperature relation is one power law from galaxy groups to massive clusters, with slope $1.65$, making temperature a workable mass proxy across two decades in halo mass.
desk verdict Solid, careful stacking measurement that extends the M–T relation to optically selected groups; main caveat is the external mass calibration, not the X-ray analysis. read the letter →
The pith
A machine-rendered reading of the paper's core claim, the machinery that carries it, and where it could break.
The reading
What carries the argument
The carrying mechanism is spectral stacking of optically selected groups: groups are sorted into halo-mass bins, their eRASS1 event lists are masked of point sources, spectra are extracted within $R_{500}$, shifted to a common rest frame, and co-added; each stacked spectrum is then fit with a multi-temperature plasma model (gadem) to recover a mean gas temperature per bin. The optical luminosity-based halo masses are converted to $M_{500}$ by assuming $M_{180}\sim M_{200}$ and a mass-dependent $M_{500}/M_{200}\simeq0.7$ with $0.046$ dex scatter taken from the hydrodynamical simulation. The same pipeline is applied to mock eROSITA observations built from that simulation and an X-ray telescope simulator; agreement between input and recovered temperatures is what turns the stacked temperature into a claimed unbiased measurement.
What would settle it
Measure independent masses for the same stacked groups, for example with weak gravitational lensing or thermal Sunyaev–Zel'dovich observations, and refit the mass–temperature relation; a mass-dependent offset between lensing masses and the luminosity-calibrated $M_{500}$ values would break the single-power-law claim. Alternatively, the deeper eRASS:4 survey should reproduce the same slope with smaller scatter rather than a steeper low-mass end.
Extended reading notes
Core claim
The paper's central result is the best-fit relation $\log_{10}(M_{500}/M_\odot) = (1.65\pm0.11)\,\log_{10}(T_X/1\,\mathrm{keV}) + (13.38\pm0.05)$, with intrinsic scatter $0.13\pm0.03$ dex. The claim is that this single power law, statistically consistent with the previously established cluster relation and within about $1.7\sigma$ of the self-similar prediction $M\propto T^{1.5}$, describes galaxy groups and clusters alike. The low-temperature end is anchored by seven stacked mass bins in which average temperatures of $0.7$–$1$ keV are measured from co-added spectra, while the mock tests show that contamination from unresolved AGNs and spurious optical detections does not systematically bias these temperatures. On this basis the authors conclude that AGN feedback and cooling redistribute baryons or alter the group core but do not change the overall temperature of the hot gas, so the temperature can serve as a mass proxy over the entire sampled range.
Load-bearing premise
The relation rests on the assumption that the optical luminosity-calibrated halo masses can be converted to $M_{500}$ with a fixed, mass-dependent ratio of about $0.7$ taken from a hydrodynamical simulation; if that conversion is biased as a function of mass, the fitted slope and intercept shift.
Editorial extensions
If this is right
- Temperature-based mass estimates can be extended to optically selected groups roughly two decades below the mass range of current X-ray-selected cluster samples.
- Cluster and group mass-function studies can adopt a single calibrated $M$–$T$ relation over this larger range, improving constraints on cosmological parameters such as $S_8$.
- With the deeper eRASS:4 data, per-bin statistics will grow enough to measure temperature profiles rather than only average temperatures, giving a sharper view of AGN feedback.
- The same stack-and-measure approach can be applied to any X-ray-faint population selected by other means, such as low-luminosity AGNs or high-redshift cluster candidates.
Reading between the lines
- Editorial inference: if the single power law survives independent mass calibration, the apparent group/cluster differences reported by some X-ray-selected samples are probably selection effects, with X-ray selection favoring low-entropy systems, rather than a real break in the relation.
- Editorial inference: re-running the identical stacking with weak-lensing masses for the same mass bins would directly test the assumed $M_{500}$ conversion and the luminosity-based mass calibration, a test the current data cannot provide.
- Editorial inference: the mock result that current AGN activity does not change the relation suggests the gas response time exceeds the AGN duty cycle; deeper data with radio-mode feedback indicators could test this by comparing active and inactive systems at fixed mass.
Signed reviews
Editorial analysis
A structured set of objections, weighed in public.
Referee Report
Summary. The paper measures the X-ray temperature of low-mass galaxy groups and clusters by stacking eRASS1 spectra of optically selected Yang et al. (2007) groups, using the Magneticum simulation to validate the stacking pipeline. From seven stacked mass bins spanning roughly 10^13 to 7x10^14 Msun, the authors fit a single power-law mass-temperature relation, Eq. (2): log10(M500/Msun) = (1.65 +/- 0.11) log10(TX/1 keV) + (13.38 +/- 0.05), with intrinsic scatter 0.13 +/- 0.03 dex. They report that this relation is consistent with the self-similar prediction and with the cluster-based relation of Lovisari et al. (2015), and they argue that a single power law holds across the entire sampled range, so that temperature remains a reliable mass proxy down to group scales. The paper also compares the measured relation with Magneticum, FLAMINGO, and EAGLE predictions and discusses the implications of AGN feedback for the intragroup medium.
Significance. If the central result holds, the paper significantly extends the observationally calibrated mass-temperature relation into the poorly populated group regime using an X-ray unbiased, optically selected sample. The methodological contribution is also valuable: stacking spectra of optically selected groups is a promising route to extracting thermodynamic information from systems that are individually undetected in shallow surveys. Strengths of the work include the use of a sample selected independently of X-ray properties, a detailed mock-based validation of the stacking and spectral-fitting pipeline, explicit background checks against blank fields, bootstrap-based uncertainty estimates, and the use of public eRASS1 and Y07 data. The central conclusion, however, rests on the absolute calibration of the Y07 mass scale and on several modeling assumptions inherited from the Magneticum simulation, and the quantitative validation is performed at eRASS:4 depth rather than eRASS1 depth; these issues need to be addressed before the claim of a universal single power law can be accepted without qualification.
major comments (4)
- [§2.1, Fig. 1, Eq. (2)] The x-axis masses in Eq. (2) are derived from Y07 luminosity-based halo masses defined at M180, converted to M500 by assuming M180 ~ M200 and multiplying by a Magneticum-derived M500/M200 ratio of ~0.7 with 0.046 dex scatter (Fig. 1). The central claim that the M-T relation is a single power law without a slope change in the group regime is therefore only as secure as the Y07 mass-to-light calibration and the simulated conversion ratio. The Colossus comparison in §2.1 validates the conversion only under an assumed dark-matter density profile and concentration model; it does not test the absolute Y07 mass scale at M500 ~ 10^13 Msun. A mass-dependent bias of the order of plausible M/L calibration errors would directly bias both the slope and intercept of Eq. (2) and could mimic or hide a group-regime break. Please propagate this systematic into the fit (for example, as a covariance term) or demonstrate robustness by repeating the fit with an independent mass calibration, such as the Y07 stellar-mass proxy, updated Yang et al. catalogs, or stacked weak-lensing masses.
- [§5.2 and §6.1] The gadem temperature model fixes the width of the Gaussian emission-measure distribution to T_sigma = 0.2 keV, stated to be 'based on the distribution of mass-weighted temperatures from the simulations.' Because the same Magneticum simulation is used both to set this prior and to validate the temperature recovery, the validation is partly circular for this parameter. If the true temperature dispersion in low-mass groups differs from the simulated one, for example because of a wider multiphase gas distribution or AGN-driven outflows, the fitted mean temperature will be biased in a temperature-dependent way, and that bias will propagate into the slope of Eq. (2). Please add a sensitivity test that varies T_sigma over a plausible range and reports the induced change in recovered temperatures, and ideally compare the assumed dispersion with measured temperature distributions of high-S/N eRASS1 or XMM-Newton groups.
- [§3.3, Figs. 8-9, Appendix B] The quantitative validation of the stacking and spectral fitting, including the consistency of stacked and input spectra and the comparison of recovered versus input temperatures, is carried out on mock observations at eRASS:4 depth, while the observed analysis uses eRASS1 data. Appendix B shows eRASS1 stacked images but does not repeat the temperature-recovery tests at eRASS1 depth. Since eRASS1 has roughly four times fewer photons and a correspondingly larger background and unresolved-AGN contribution, the validation as presented does not directly cover the actual data conditions. Please repeat the mock temperature-recovery test at eRASS1 depth, or at least quantify the expected bias and increased uncertainty from the lower S/N in each mass bin.
- [§7.1, Eq. (2)] The conclusion that the M-T relation 'does not change slope' in the group regime is supported only by fitting a single power law and by the statement that the data agree with Lovisari et al. (2015) within 1 sigma. No comparison is shown against a two-slope or broken power-law model, and the uncertainties in Table A.1 are large; for example, the bin at log10(M500/Msun)=14.09 has kT=2.47(+2.38/-0.81) keV at 3 sigma. A single power law will almost necessarily remain consistent when the error bars are this large, so 'no significant slope change' should be quantified with a model-comparison statistic or by placing an explicit upper limit on the slope difference between the low-mass and high-mass bins.
minor comments (6)
- [§7.1] Equation (2) should be typeset as log10(M500/Msun) = (1.65 +/- 0.11) log10(TX/1 keV) + (13.38 +/- 0.05) to avoid the impression that the uncertainty multiplies the whole temperature term.
- [§7.1 and Table A.1] The paper quotes 1-sigma uncertainties for Eq. (2) but reports 3-sigma uncertainties in Table A.1; please state this difference explicitly in the table caption and in the text.
- [§5.2] The gadem model reference appears as a broken inline link ('gadem3https://...'); the citation and the surrounding formatting need to be fixed.
- [§6.1 and Fig. 8] The Fig. 8 caption refers to point-source masking based on the eRASS1 catalog, while the mock analysis described in §6.1 uses eRASS:4-equivalent mocks; please clarify which catalog was actually used.
- [Appendix B] The appendix heading uses 'eRASS4' while the rest of the paper uses 'eRASS:4'; please unify the notation.
- [Abstract and Table A.1] The abstract states that the relation spans up to about 10^15 Msun, but the highest bin in Table A.1 is log10(M500/Msun) ~ 14.85, corresponding to roughly 7x10^14 Msun; please reconcile the wording with the actual range of the fitted bins.
Circularity Check
No significant circularity: the fitted M–T relation of Eq. (2) is anchored to the external Y07 optical mass catalog and real eRASS1 spectra; the Magneticum-based conversions and spectral priors are stated assumptions that do not define the fitted slope or intercept by construction.
full rationale
Equation (2) is obtained by an ODR fit of stacked eRASS1 spectral temperatures (Table A.1) to Y07 luminosity-based halo masses converted to M500. The mass proxy is external to this work (SDSS DR4 plus the Yang et al. 2005/2007 calibration), and the temperatures come from real eRASS1 photons; neither side of the relation is defined by the Magneticum simulation. The simulation-derived M500/M200 ratio is approximately constant (~0.7) across the mass range (Fig. 1), so it changes the normalization by about log10(0.7) ≈ −0.15 dex but cannot by construction generate the measured slope 1.65 ± 0.11. The fixed gadem temperature width of 0.2 keV is a stated spectral-modeling assumption, and the mock tests in Section 6.2 check that the stacking pipeline recovers input mass-weighted temperatures; they do not assign the observed temperature values used in the fit. The paper does not invoke a uniqueness theorem, does not rename a known result, and does not present a fitted parameter as a prediction. The manuscript also explicitly compares the result with the independent Lovisari et al. (2015) relation and with the self-similar prediction, providing external context. The Y07 mass-to-light calibration and the M500/M200 conversion are legitimate sources of possible systematic error, but that is a correctness risk rather than circularity. No step in the derivation reduces Eq. (2) to its own inputs by construction, so the appropriate circularity score is 0.
Assumptions & free parameters
free parameters (4)
- gadem temperature width (T_sigma) =
0.2 keV
- ICM/IGrM metallicity =
0.3 Zsun (Anders & Grevesse 1989)
- Galactic hydrogen column density =
2.6e20 cm^-2 (sample average)
- M500/M200 conversion ratio =
~0.7 with 0.046 dex scatter
assumptions (6)
- domain assumption Flat LCDM cosmology with Omega_m = 0.27 and H0 = 70 km/s/Mpc
- ad hoc to paper M180 is approximately equal to M200 for the Y07 halos
- ad hoc to paper The gadem multi-temperature model with a Gaussian emission-measure distribution and fixed width 0.2 keV describes the stacked group spectra
- domain assumption Unresolved AGN contamination is negligible for temperature measurement and needs no explicit model component
- domain assumption The Magneticum simulation is a reliable basis for calibrating the M500/M200 ratio and for validating the stacking pipeline
- domain assumption A constant metallicity of 0.3 solar within R500 is adequate for the spectral fits
Cite this review
Pith. "Pith review of The eROSITA view on the halo mass-temperature relation: From low-mass groups to massive clusters." pith.science (2026). https://pith.science/paper/TY27G2D6
@misc{pith2026250501502,
author = {Pith},
title = {Pith review of: The eROSITA view on the halo mass-temperature relation: From low-mass groups to massive clusters},
year = {2026},
howpublished = {\url{https://pith.science/paper/TY27G2D6}},
note = {Machine review of arXiv:2505.01502}
}
abstract
Galaxy groups and clusters are among the best probes of structure formation and growth in a cosmological context. Most of their baryonic component is dominated by the intracluster medium (ICM), whose thermodynamical properties serve as indicators of the halo's dynamical state and can be used for the halo mass determination in the self-similar scenario. However, baryonic processes, such as AGN feedback and gas cooling, may affect the global properties of the ICM, especially in the group regime. These effects might lead to deviations from self-similar predictions in galaxy groups' scaling relations, while they remain in place for massive galaxy clusters. Additionally, the low-mass end of the scaling relations, ranging from $10^{13}$ to $10^{14} M_\odot$, remains unclear and poorly populated, as current X-ray surveys detect only the brightest groups. Here, we present the Mass-Temperature relation across the full mass range, from massive clusters to low-mass groups ($10^{13}M_\odot$), as observed by eROSITA. Using spectral stacking from eROSITA eRASS1 data for optically selected galaxy groups, we find that, in the lower mass range, galaxy groups follow the power-law relation known for galaxy clusters. We further validate these results by conducting the same stacking procedure on mock eRASS:4 data using the Magneticum hydrodynamical simulation. This indicates that AGN feedback is more likely to affect the distribution of baryons in the intragroup medium rather than the overall halo gas temperature. No significant changes in the Mass-Temperature relation slope suggest that temperature can serve as a reliable mass proxy across the entire mass range. This validates the use of temperature-derived masses, particularly in cosmological studies, significantly broadening the mass range and enabling applications such as improving the cluster mass function studies and cosmological parameter estimate.
Figures
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Forward citations
Cited by 1 Pith paper
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What's Missing in AGN Feedback? Lessons learnt from Magneticum, IllustrisTNG and Simba
No current simulation simultaneously reproduces observed halo hot-gas fractions and local galaxy star-formation/quenching demographics; strong AGN feedback overquenches, weak feedback retains too much gas.
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ENTRY address archiveprefix author booktitle chapter edition editor howpublished institution eprint journal key month note number organization pages publisher school series title type volume year label extra.label sort.label short.list INTEGERS output.state before.all mid.sent...
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[103]
write newline
" write newline "" before.all 'output.state := FUNCTION n.dashify 't := "" t empty not t #1 #1 substring "-" = t #1 #2 substring "--" = not "--" * t #2 global.max substring 't := t #1 #1 substring "-" = "-" * t #2 global.max substring 't := while if t #1 #1 substring * t #2 gl...
Reviewed August 16, 2026 · model on record in the stance chip above.
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