REVIEW 3 major objections 6 minor 101 references
Shock-accelerated electrons can unify radio and X-ray emission across AGN classes, with radio loudness and the fundamental plane tracking accretion state.
Reviewed by Pith at T0; open to challenge. T0 means a machine referee read the full paper against a public rubric. the ladder, T0–T4 →
Shock-accelerated non-thermal electrons produce AGN radio synchrotron and X-ray IC emission whose scalings with accretion rate and black-hole mass recover observed radio-loudness trends and fundamental-plane slopes.
T0 review reviewed 2026-07-12 challenge →
load-bearing objection Useful analytic synthesis of radio/X-ray scalings that recovers known loudness and FP trends, but the site-assignment claims inherit fixed normalizations rather than following uniquely from the power laws. the 3 major comments →
A Shock-based Interpretation of Radio and X-ray Emission in Active Galactic Nuclei
The pith
A machine-rendered reading of the paper's core claim, the machinery that carries it, and where it could break.
The reading
Core claim
A single shock-accelerated non-thermal electron population produces radio synchrotron and X-ray inverse-Compton emission whose luminosity scalings (radio luminosity proportional to accretion rate times black-hole mass; X-ray luminosity proportional to accretion rate squared, or to accretion rate squared over black-hole mass when external disk or broad-line photons dominate) self-consistently explain radio-loudness trends and the change in fundamental-plane slope between advection-dominated and thin-disk regimes, while disfavoring disk/corona non-thermal X-rays in jetted AGNs.
What carries the argument
Shock-based luminosity scalings for radio (synchrotron) and X-ray (SSC or external-Compton) emission, with non-thermal electron density fixed by a fixed acceleration fraction of the accreted or outflowing material and a free-fall or free-escape residence time; these scalings are then inserted into radio loudness and the fundamental-plane slope.
Load-bearing premise
The number of radiating non-thermal electrons is set by a fixed few-percent acceleration fraction of the accreted or outflowing gas, together with a simple free-fall or free-escape residence time and the assumption that the emission region is as large as its distance from the black hole.
What would settle it
Measure radio loudness and fundamental-plane slopes for a sample of non-jetted AGNs whose accretion rates and black-hole masses are independently constrained; if the observed slopes cannot be reproduced by any plausible dependence of magnetic-field strength and emission-region size on accretion rate, or if jetted sources systematically require disk/corona non-thermal X-rays, the framework fails.
If this is right
- Low-luminosity AGNs should show X-rays dominated by an advection-dominated flow, while Seyferts and radio-quiet quasars should show X-rays dominated by a radiatively efficient disk or corona.
- Radio loudness must increase with black-hole mass and decrease with Eddington ratio across both jetted and non-jetted populations.
- As accretion rate rises, the characteristic emission region of an ADAF shrinks while that of a thin disk grows, producing a measurable change in fundamental-plane slope.
- In jetted AGNs, non-thermal X-ray electrons are not accelerated in the disk or corona; jet-dominated synchrotron self-Compton or external-Compton scenarios are preferred.
Where Pith is reading between the lines
- If the contraction of the ADAF and expansion of the thin disk with rising accretion rate is confirmed by simulations or multi-wavelength size measurements, the same transition would also explain why radio-loud jets become rarer at high Eddington ratio.
- The inability of the model to cleanly separate Doppler boosting from intrinsic accretion rate in jetted sources suggests that future work will need simultaneous constraints on bulk Lorentz factor and mass outflow rate.
- A natural next test is whether the same shock-accelerated population can reproduce the full radio-to-X-ray spectral energy distributions of individual well-studied LLAGNs and radio-quiet quasars without additional free components.
Editorial analysis
A structured set of objections, weighed in public.
Referee Report
Summary. The paper proposes a shock-based framework in which non-thermal electrons accelerated by shocks produce radio synchrotron emission (in the accretion flow, jet, or weak outflow) and X-ray inverse-Compton emission (SSC or EC of disk/BLR photons). Appendices A–B derive observer-frame luminosities under a slow-cooling power-law electron distribution, with normalizations set by a fixed acceleration fraction η = 5% (or F = Ṁout/Ṁ) and free-fall/free-escape residence times, and with Rblob ≃ R. The resulting scalings LR ∝ Ṁ MBH and LX ∝ Ṁ² (SSC/ADAF) or Ṁ² MBH⁻¹ (disk/corona/EC) are used to invert observed luminosity ranges (Tables 1–2), to map radio loudness RX over (Ṁ, MBH) (Table 3, Fig. 2), and to express the fundamental-plane slope ξX in terms of a composite derivative U = ∂log B/∂log Ṁ + ∂log R/∂log Ṁ (Eqs. 16–18, Fig. 3). The authors conclude that the framework self-consistently accounts for non-jetted AGN classes, disfavors non-thermal disk/corona X-rays in jetted AGNs, recovers the observed RX trends with mass and Eddington ratio, and links the change in FP slope to contraction of the ADAF region and expansion of the thin-disk region as Ṁ rises.
Significance. If the luminosity scalings and the U-based interpretation of the FP slope hold under more flexible normalizations, the paper would supply a compact, falsifiable mapping from accretion state and emission-site geometry onto two of the most widely used empirical diagnostics (radio loudness and the fundamental plane). The transparent algebra in Appendices A–B, the explicit RX expressions in Table 3, and the reduction of ξX to a single composite derivative U are genuine strengths: they make the model’s predictions checkable against multiwavelength samples and against MHD expectations for how B and R scale with Ṁ. The work is therefore of interest to the AGN accretion/jet community even if some of the stronger site-assignment claims require qualification.
major comments (3)
- §3.1–3.2, Eqs. (5)–(12) and Appendices A–B: absolute luminosities are controlled by fixed choices η = 5%, F = 0.1 or 10⁻⁴, Rblob ≃ R, and hand-set νc,syn,obs. Tables 1–2 invert observed L ranges under those normalizations to obtain Ṁ intervals that are then declared ‘physically plausible’ or not; Fig. 2 and Table 3 use the same normalizations to place RX contours and to ‘disfavor’ disk/corona X-ray sites in jetted AGNs. Because the scalings themselves are only power-law, a systematic shift in η or F by a factor of a few moves the inferred Ṁ windows across the ADAF/disk boundary and can bring the disk+jet and corona+jet panels of Fig. 2 above the RX threshold. The site-assignment and ‘disfavor’ statements are therefore not robust consequences of the scalings alone; they inherit the absolute calibration of free parameters. A sensitivity analysis (or an explicit statement that only the powe
- §5, Eqs. (16)–(18) and Fig. 3: the FP-slope analysis reduces ξX to a single composite U = ∂log B/∂log Ṁ + ∂log R/∂log Ṁ under three simplifying assumptions (B and R dominate, MBH dependence of the derivatives is negligible, Doppler effects can be neglected). The allowed U intervals (0.22–0.67 for ADAF, 0.85–1.02 for disk) are then interpreted as contraction of the ADAF region and expansion of the thin-disk region with rising Ṁ. This geometric inference is interesting but under-constrained: the paper does not demonstrate that other combinations of ∂log B/∂log Ṁ and ∂log R/∂log Ṁ (or residual MBH dependence) are excluded, nor does it confront the same U framework with jetted FP slopes (which the text itself notes are not satisfactorily explained). The claim that the Eddington ratio ‘shapes the observed AGN classes’ via this structural transition therefore needs either a clearer statement o
- §4 and Table 3 / Fig. 2: radio loudness is used both as a classification metric and as a constraint on emission sites. The model recovers RX ∝ Ṁ⁻¹ MBH (or MBH²) and the anti-correlation with λEdd, which is a useful consistency check. However, the same figure panels that ‘disfavor’ disk/corona X-rays for jetted AGNs also show that those configurations can enter the radio-loud regime for high MBH and low Ṁ once the free parameters are allowed to vary. The text should separate the robust scaling trends (which do not depend on the absolute normalization) from the absolute site-assignment conclusions (which do).
minor comments (6)
- §2: the assumption Rblob ≃ R is stated as ‘reasonable given modest bulk Lorentz factors,’ but for jetted AGNs with Γ ∼ 20 the conical-jet relation R ≈ Rblob/θj with θj ∼ 1/Γ would imply R ≫ Rblob. A short clarification of when the equality is intended to hold would help.
- Eqs. (3)–(4): the numerical prefactors for Γmin differ by an order of magnitude between non-jetted and jetted cases; the origin of the factor 2 vs. 22 should be stated explicitly.
- Table 1 caption and Column 4: for jetted AGNs the inferred quantity is written Ṁ D^{7/2}; a brief note that D cannot be disentangled from Ṁ (already mentioned in the text) would make the table self-contained.
- Fig. 2: the color scale for log RX and the shaded ‘excluded’ regions are hard to read in grayscale; adding contour lines at the critical log RX ≃ −2.755 would improve clarity.
- §1 and §6: the paper correctly notes that it does not replace full SED modeling; a short forward-looking sentence on which multiwavelength observables (e.g., simultaneous radio–X-ray spectral indices or variability) could falsify the preferred site combinations would strengthen the discussion.
- Typographical: ‘F an Wu’ in the author list; inconsistent spacing around units (e.g., ‘10 9 K’, ‘M⊙ yr−1’); occasional missing spaces before citations.
Circularity Check
No load-bearing circularity: luminosity scalings and RX/FP trends follow from independent assumptions; site assignments are external consistency checks against observed L ranges and the RX threshold, not reductions by construction.
full rationale
The paper derives radio and X-ray luminosities (Eqs. 5–12; Appendices A–B) from a power-law electron distribution injected by shocks, with fixed normalizations (η = 5 % from Courvoisier & Camenzind 1989; F = Ṁout/Ṁ; free-fall or free-escape residence times; Rblob ≃ R; fiducial B, νc,syn, Γ). These yield the model-independent scalings LR ∝ Ṁ MBH and LX ∝ Ṁ² (SSC/ADAF) or Ṁ² MBH⁻¹ (EC/disk). Radio loudness RX = LR/LX then automatically produces RX ∝ MBH/Ṁ or MBH²/Ṁ, recovering the observed increase with MBH and decrease with λ Edd without any fit to those trends. FP slopes ξX are obtained by logarithmic differentiation of the same luminosities (Eqs. 15–17) and expressed in terms of U = ∂log B/∂log Ṁ + ∂log R/∂log Ṁ; observed ξX ranges simply constrain the allowed U, which is then interpreted physically. Tables 1–2 invert observed L under the fixed normalizations to obtain Ṁ intervals that are compared with external expectations for ADAF vs. thin-disk regimes; Figure 2 and Table 3 likewise test which site combinations can sit above/below the empirical log RX ≃ −2.755 threshold. These are ordinary consistency tests, not self-definitional loops or fitted-input “predictions.” No uniqueness theorem or ansatz is imported via self-citation (authors Wu & Dai cite only external literature). Absolute calibration depends on the free parameters, so site-assignment conclusions are not uniquely forced, but that is a robustness issue, not circularity of the derivation chain. Score 2 reflects only the mild dependence of the absolute Ṁ windows on the chosen normalizations.
Axiom & Free-Parameter Ledger
free parameters (9)
- η (acceleration fraction of accreted electrons) =
0.05
- F = Ṁout/Ṁ (outflow-to-accretion ratio) =
0.1 or 10^{-4}
- B or B′ (magnetic field) =
0.1 G
- R or R′ (emission-region size / distance) =
10–10^4 Rg
- ζ (disk radiative efficiency) =
0.1
- ξ (BLR reprocessing fraction) =
0.1
- Γ (bulk Lorentz factor) =
1 or 20
- νc,syn,obs (synchrotron cutoff frequency) =
10^{14} or 10^{18} Hz
- tmin,var (variability timescale) =
10^4 s
axioms (5)
- domain assumption Shock acceleration injects a power-law electron spectrum Q(γ) ∝ γ^{-p} that, in the slow-cooling limit with energy-independent escape, yields N(γ) ∝ γ^{-p}.
- domain assumption Radio emission is pure synchrotron and X-ray emission is pure inverse-Compton in the Thomson regime; hadronic processes are neglected.
- ad hoc to paper Emission-region size equals its distance from the black hole (Rblob ≃ R) and residence time is free-fall (accretion flow) or free-escape (jet/outflow).
- standard math Standard single-electron synchrotron and IC power formulas (Rybicki & Lightman) hold and transform with the usual Doppler factor D^4/(1+z)^2.
- ad hoc to paper Magnetic field and emission-region radius may be treated as power-law functions of Ṁ whose logarithmic derivatives sum to a single parameter U that controls the FP slope.
invented entities (1)
-
Shock-based emission-region framework (distinct accretion-flow / weak-outflow / jet sites with fixed F and η)
no independent evidence
Cite this review
Pith. "Pith review of A Shock-based Interpretation of Radio and X-ray Emission in Active Galactic Nuclei." pith.science (2026). https://pith.science/paper/QXN42SDK
@misc{pith2026260702641,
author = {Pith},
title = {Pith review of: A Shock-based Interpretation of Radio and X-ray Emission in Active Galactic Nuclei},
year = {2026},
howpublished = {\url{https://pith.science/paper/QXN42SDK}},
note = {Machine review of arXiv:2607.02641}
}
read the original abstract
We propose a shock-based framework to interpret the radio and X-ray emission in active galactic nuclei (AGNs), whose origin remains an open problem. In this framework, the radio emission is produced by synchrotron radiation in the accretion flow or a jet/weak outflow, while the dominant X-ray component depends on the accretion state, the location of the non-thermal emission region, and the available seed photon field. The model provides a self-consistent interpretation of radio and X-ray emission in typical non-jetted AGNs, including low-luminosity AGNs, Seyfert galaxies, and radio-quiet quasars. In jetted AGNs, our results disfavor scenarios in which the non-thermal electrons responsible for X-ray emission are accelerated in the disk or the corona. We use two widely discussed empirical diagnostics, radio loudness and the fundamental plane (FP) of black hole (BH) activity, to assess the applicability and limitations of the model. It can naturally explain the observed trends that the radio loudness increases with BH mass and decreases with the Eddington ratio. The observed slope of the FP depends on how the key physical quantities scale with the accretion rate. As the accretion rate increases, the advection-dominated accretion flow region contracts while the thin disk region expands, reflecting a transition toward a more radiatively efficient accretion structure. The Eddington ratio therefore influences the accretion structure, and may in turn shape the observed AGN classes.
Figures
Reference graph
Works this paper leans on
-
[1]
Annuar, A., Alexander, D. M., Gandhi, P., et al. 2025, MNRAS, 540, 3827, doi: 10.1093/mnras/staf956
-
[2]
Antonucci, R. R. J., & Miller, J. S. 1985, ApJ, 297, 621, doi: 10.1086/163559
doi:10.1086/163559 1985
-
[3]
Siemiginowska, A., & Schwartz, D. A. 2022, MNRAS, 513, 4673, doi: 10.1093/mnras/stac1153
-
[4]
Mushotzky, R. F. 2018, MNRAS, 478, 399, doi: 10.1093/mnras/sty850
-
[5]
Best, P. N., & Heckman, T. M. 2012, MNRAS, 421, 1569, doi: 10.1111/j.1365-2966.2012.20414.x
-
[6]
Blandford, R., Meier, D., & Readhead, A. 2019, ARA&A, 57, 467, doi: 10.1146/annurev-astro-081817-051948 B la˙ zejowski, M., Sikora, M., Moderski, R., & Madejski, G. M. 2000, ApJ, 545, 107, doi: 10.1086/317791
-
[7]
Bloom, S. D., & Marscher, A. P. 1996, ApJ, 461, 657, doi: 10.1086/177092
doi:10.1086/177092 1996
-
[8]
Blundell, K. M., & Beasley, A. J. 1998, MNRAS, 299, 165, doi: 10.1046/j.1365-8711.1998.01752.x
-
[9]
2008, MNRAS, 385, 283, doi: 10.1111/j.1365-2966.2007.12758.x
Celotti, A., & Ghisellini, G. 2008, MNRAS, 385, 283, doi: 10.1111/j.1365-2966.2007.12758.x
-
[10]
2019, MNRAS, 487, 3884, doi: 10.1093/mnras/stz1532
Cheng, H., Yuan, W., Liu, H.-Y., et al. 2019, MNRAS, 487, 3884, doi: 10.1093/mnras/stz1532
-
[11]
2018, MNRAS, 477, 4749, doi: 10.1093/mnras/sty887
Tramacere, A. 2018, MNRAS, 477, 4749, doi: 10.1093/mnras/sty887
-
[12]
Courvoisier, T. J. L., & Camenzind, M. 1989, A&A, 224, 10
1989
-
[13]
Davis, S. W., & Laor, A. 2011, ApJ, 728, 98, doi: 10.1088/0004-637X/728/2/98
-
[14]
2014, ApJL, 787, L20, doi: 10.1088/2041-8205/787/2/L20
Dong, A.-J., Wu, Q., & Cao, X.-F. 2014, ApJL, 787, L20, doi: 10.1088/2041-8205/787/2/L20
-
[15]
2024, ApJ, 971, 74, doi: 10.3847/1538-4357/ad5cef
Ege, E., ¨Ozd¨ onmez, A., Agarwal, A., & Ak, T. 2024, ApJ, 971, 74, doi: 10.3847/1538-4357/ad5cef
-
[16]
2006, NewAR, 50, 728, doi: 10.1016/j.newar.2006.06.027
Elitzur, M. 2006, NewAR, 50, 728, doi: 10.1016/j.newar.2006.06.027
-
[17]
2016, MNRAS, 459, 585, doi: 10.1093/mnras/stw657
Elitzur, M., & Netzer, H. 2016, MNRAS, 459, 585, doi: 10.1093/mnras/stw657
-
[18]
2006, ApJL, 648, L101, doi: 10.1086/508158
Elitzur, M., & Shlosman, I. 2006, ApJL, 648, L101, doi: 10.1086/508158
doi:10.1086/508158 2006
-
[19]
Elvis, M., Maccacaro, T., Wilson, A. S., et al. 1978, MNRAS, 183, 129, doi: 10.1093/mnras/183.2.129
-
[20]
Esin, A. A., McClintock, J. E., & Narayan, R. 1997, ApJ, 489, 865, doi: 10.1086/304829 Event Horizon Telescope Collaboration, Akiyama, K.,
doi:10.1086/304829 1997
-
[21]
Algaba, J. C., et al. 2021, ApJL, 910, L13, doi: 10.3847/2041-8213/abe4de
-
[22]
2017, MNRAS, 467, 2566, doi: 10.1093/mnras/stx221
Coppi, P. 2017, MNRAS, 467, 2566, doi: 10.1093/mnras/stx221
-
[23]
2017, A&A, 601, A143, doi: 10.1051/0004-6361/201629478
Fiore, F., Feruglio, C., Shankar, F., et al. 2017, A&A, 601, A143, doi: 10.1051/0004-6361/201629478
-
[24]
2015, Journal of High Energy Astrophysics, 7, 163, doi: 10.1016/j.jheap.2015.03.002
Ghisellini, G. 2015, Journal of High Energy Astrophysics, 7, 163, doi: 10.1016/j.jheap.2015.03.002
-
[25]
1985, A&A, 146, 204
Ghisellini, G., Maraschi, L., & Treves, A. 1985, A&A, 146, 204
1985
-
[26]
2008, MNRAS, 387, 1669, doi: 10.1111/j.1365-2966.2008.13360.x —
Ghisellini, G., & Tavecchio, F. 2008, MNRAS, 387, 1669, doi: 10.1111/j.1365-2966.2008.13360.x —. 2009, MNRAS, 397, 985, doi: 10.1111/j.1365-2966.2009.15007.x
-
[27]
2014, Nature, 515, 376, doi: 10.1038/nature13856 Guti´ errez, E
Sbarrato, T. 2014, Nature, 515, 376, doi: 10.1038/nature13856 Guti´ errez, E. M., Vieyro, F. L., & Romero, G. E. 2021, A&A, 649, A87, doi: 10.1051/0004-6361/202039671
-
[28]
1991, ApJL, 380, L51, doi: 10.1086/186171 —
Haardt, F., & Maraschi, L. 1991, ApJL, 380, L51, doi: 10.1086/186171 —. 1993, ApJ, 413, 507, doi: 10.1086/173020 xivWu et al
doi:10.1086/186171 1991
-
[29]
Haas, M., M¨ uller, S. A. H., Chini, R., et al. 2000, A&A, 354, 453
2000
-
[30]
2004, MNRAS, 355, 835, doi: 10.1111/j.1365-2966.2004.08361.x
Heinz, S. 2004, MNRAS, 355, 835, doi: 10.1111/j.1365-2966.2004.08361.x
-
[31]
Heinz, S., & Sunyaev, R. A. 2003, MNRAS, 343, L59, doi: 10.1046/j.1365-8711.2003.06918.x
-
[32]
Ho, L. C. 2002, ApJ, 564, 120, doi: 10.1086/324399
doi:10.1086/324399 2002
-
[33]
Ho, L. C., & Ulvestad, J. S. 2001, ApJS, 133, 77, doi: 10.1086/319185
doi:10.1086/319185 2001
-
[34]
Ishibashi, W., & Courvoisier, T. J. L. 2011, A&A, 525, A118, doi: 10.1051/0004-6361/201014987
-
[35]
Jiang, Y.-F., Stone, J. M., & Davis, S. W. 2014, ApJ, 784, 169, doi: 10.1088/0004-637X/784/2/169
-
[36]
Probing the Physical Properties of the Corona in Accreting Black Holes
Kamraj, N., Fabian, A., Lohfink, A., et al. 2019, BAAS, 51, 126, doi: 10.48550/arXiv.1903.05241
work page internal anchor Pith review Pith/arXiv arXiv doi:10.48550/arxiv.1903.05241 2019
-
[37]
2025, arXiv e-prints, arXiv:2504.08067, doi: 10.48550/arXiv.2504.08067
Kang, J.-L., Done, C., Hagen, S., et al. 2025, arXiv e-prints, arXiv:2504.08067, doi: 10.48550/arXiv.2504.08067
-
[38]
2022, PASJ, 74, 791, doi: 10.1093/pasj/psac036
Kayanoki, T., & Fukazawa, Y. 2022, PASJ, 74, 791, doi: 10.1093/pasj/psac036
-
[39]
Kellermann, K. I., & Moran, J. M. 2001, ARA&A, 39, 457, doi: 10.1146/annurev.astro.39.1.457
-
[40]
Krolik, J. H. 1999, Active Galactic Nuclei. From the Central Black Hole to the Galactic Environment
1999
-
[41]
Becker, R. H., & White, R. L. 2001, ApJL, 551, L17, doi: 10.1086/319836
-
[42]
Laha, S., Ricci, C., Mather, J. C., et al. 2025, Frontiers in Astronomy and Space Sciences, 11, 1530392, doi: 10.3389/fspas.2024.1530392
-
[43]
Laor, A., Baldi, R. D., & Behar, E. 2019, MNRAS, 482, 5513, doi: 10.1093/mnras/sty3098
-
[44]
2008, MNRAS, 390, 847, doi: 10.1111/j.1365-2966.2008.13806.x
Laor, A., & Behar, E. 2008, MNRAS, 390, 847, doi: 10.1111/j.1365-2966.2008.13806.x
-
[45]
1989, MNRAS, 238, 897, doi: 10.1093/mnras/238.3.897
Laor, A., & Netzer, H. 1989, MNRAS, 238, 897, doi: 10.1093/mnras/238.3.897
-
[46]
2006, A&A, 455, 161, doi: 10.1051/0004-6361:20054311
Leipski, C., Falcke, H., Bennert, N., & H¨ uttemeister, S. 2006, A&A, 455, 161, doi: 10.1051/0004-6361:20054311
-
[47]
2008, ApJ, 688, 826, doi: 10.1086/592314
Li, Z.-Y., Wu, X.-B., & Wang, R. 2008, ApJ, 688, 826, doi: 10.1086/592314
doi:10.1086/592314 2008
-
[48]
2020, MNRAS, 497, 482, doi: 10.1093/mnras/staa1559
Liao, M., Gu, M., Zhou, M., & Chen, L. 2020, MNRAS, 497, 482, doi: 10.1093/mnras/staa1559
-
[49]
Liodakis, I., Marscher, A. P., Agudo, I., et al. 2022, Nature, 611, 677, doi: 10.1038/s41586-022-05338-0
-
[50]
2020, MNRAS, 494, 3656, doi: 10.1093/mnras/staa955
Liska, M., Tchekhovskoy, A., & Quataert, E. 2020, MNRAS, 494, 3656, doi: 10.1093/mnras/staa955
-
[51]
Liu, B. F., & Qiao, E. 2022, iScience, 25, 103544, doi: 10.1016/j.isci.2021.103544
-
[52]
Liu, J.-Y., Mao, J., & Liu, B. F. 2024, MNRAS, 527, 5627, doi: 10.1093/mnras/stad3615
-
[53]
2025, ApJ, 980, 187, doi: 10.3847/1538-4357/adaaee
Long, Q.-C., Dong, A.-J., Zhi, Q.-J., & Shang, L.-H. 2025, ApJ, 980, 187, doi: 10.3847/1538-4357/adaaee
-
[54]
2003, ApJ, 593, 667, doi: 10.1086/342118
Maraschi, L., & Tavecchio, F. 2003, ApJ, 593, 667, doi: 10.1086/342118
doi:10.1086/342118 2003
-
[55]
2004, MNRAS, 351, 169, doi: 10.1111/j.1365-2966.2004.07765.x
Marconi, A., Risaliti, G., Gilli, R., et al. 2004, MNRAS, 351, 169, doi: 10.1111/j.1365-2966.2004.07765.x
-
[56]
H., Knigge, C., Higginbottom, N., et al
Matthews, J. H., Knigge, C., Higginbottom, N., et al. 2020, MNRAS, 492, 5540, doi: 10.1093/mnras/staa136
-
[57]
Mehdipour, M., Kaastra, J. S., Kriss, G. A., et al. 2016, A&A, 588, A139, doi: 10.1051/0004-6361/201527729
-
[58]
2003, MNRAS, 345, 1057, doi: 10.1046/j.1365-2966.2003.07017.x
Merloni, A., Heinz, S., & di Matteo, T. 2003, MNRAS, 345, 1057, doi: 10.1046/j.1365-2966.2003.07017.x
-
[59]
Black hole X-ray binaries: A new view on soft-hard spectral transitions
Meyer, F., Liu, B. F., & Meyer-Hofmeister, E. 2000, A&A, 354, L67, doi: 10.48550/arXiv.astro-ph/0002053
work page internal anchor Pith review Pith/arXiv arXiv doi:10.48550/arxiv.astro-ph/0002053 2000
-
[60]
Middelberg, E., Roy, A. L., Nagar, N. M., et al. 2004, A&A, 417, 925, doi: 10.1051/0004-6361:20040019
-
[61]
2022, MNRAS, 511, 3795, doi: 10.1093/mnras/stac285
Curd, B. 2022, MNRAS, 511, 3795, doi: 10.1093/mnras/stac285
-
[62]
2002, ApJL, 570, L9, doi: 10.1086/340857
Nenkova, M., Ivezi´ c,ˇZ., & Elitzur, M. 2002, ApJL, 570, L9, doi: 10.1086/340857
doi:10.1086/340857 2002
-
[63]
2015, ARA&A, 53, 365, doi: 10.1146/annurev-astro-082214-122302
Netzer, H. 2015, ARA&A, 53, 365, doi: 10.1146/annurev-astro-082214-122302
-
[64]
2020, MNRAS, 494, 3616, doi: 10.1093/mnras/staa948
Nomura, M., Ohsuga, K., & Done, C. 2020, MNRAS, 494, 3616, doi: 10.1093/mnras/staa948
-
[65]
2016, A&A Rv, 24, 13, doi: 10.1007/s00159-016-0098-6 —
Padovani, P. 2016, A&A Rv, 24, 13, doi: 10.1007/s00159-016-0098-6 —. 2017, Nature Astronomy, 1, 0194, doi: 10.1038/s41550-017-0194
-
[66]
Panessa, F., Baldi, R. D., Laor, A., et al. 2019, Nature Astronomy, 3, 387, doi: 10.1038/s41550-019-0765-4
-
[67]
2007, A&A, 467, 519, doi: 10.1051/0004-6361:20066943
Panessa, F., Barcons, X., Bassani, L., et al. 2007, A&A, 467, 519, doi: 10.1051/0004-6361:20066943
-
[68]
2015, MNRAS, 447, 1289, doi: 10.1093/mnras/stu2455
Panessa, F., Tarchi, A., Castangia, P., et al. 2015, MNRAS, 447, 1289, doi: 10.1093/mnras/stu2455
-
[69]
2022, MNRAS, 515, 473, doi: 10.1093/mnras/stac1745
Panessa, F., Chiaraluce, E., Bruni, G., et al. 2022, MNRAS, 515, 473, doi: 10.1093/mnras/stac1745
-
[70]
O., Pi´ etu, V., Behar, E., et al
Petrucci, P. O., Pi´ etu, V., Behar, E., et al. 2023, A&A, 678, L4, doi: 10.1051/0004-6361/202347495
-
[71]
2018, ApJ, 860, 134, doi: 10.3847/1538-4357/aac32b
Qian, L., Dong, X.-B., Xie, F.-G., Liu, W., & Li, D. 2018, ApJ, 860, 134, doi: 10.3847/1538-4357/aac32b
-
[72]
2017, in The X-ray Universe 2017, ed
Qiao, E., Liu, B., Taam, R., & Yuan, W. 2017, in The X-ray Universe 2017, ed. J.-U. Ness & S. Migliari, 184
2017
-
[73]
2020, ApJ, 900, 125, doi: 10.3847/1538-4357/aba75f
Rusinek, K., Sikora, M., Kozie l-Wierzbowska, D., & Gupta, M. 2020, ApJ, 900, 125, doi: 10.3847/1538-4357/aba75f
-
[74]
B., & Lightman, A
Rybicki, G. B., & Lightman, A. P. 1979, Radiative processes in astrophysics
1979
-
[75]
2014, MNRAS, 445, 81, doi: 10.1093/mnras/stu1759
Sbarrato, T., Padovani, P., & Ghisellini, G. 2014, MNRAS, 445, 81, doi: 10.1093/mnras/stu1759
-
[76]
I., & Sunyaev, R
Shakura, N. I., & Sunyaev, R. A. 1973, A&A, 24, 337 Radio and X-ray emission in AGNsxv
1973
-
[77]
Shankar, F., Weinberg, D. H., & Miralda-Escud´ e, J. 2009, ApJ, 690, 20, doi: 10.1088/0004-637X/690/1/20
-
[78]
Siemiginowska, A., LaMassa, S., Aldcroft, T. L., Bechtold, J., & Elvis, M. 2008, ApJ, 684, 811, doi: 10.1086/589437
-
[79]
Sikora, M., Begelman, M. C., & Rees, M. J. 1994, ApJ, 421, 153, doi: 10.1086/173633
doi:10.1086/173633 1994
-
[80]
2007, ApJ, 658, 815, doi: 10.1086/511972
Sikora, M., Stawarz, L., & Lasota, J.-P. 2007, ApJ, 658, 815, doi: 10.1086/511972
doi:10.1086/511972 2007
This paper was first reviewed by grok-4.5 on July 12, 2026.
discussion (0)
Sign in with ORCID, Apple, or X to comment. Anyone can read and Pith papers without signing in.