REVIEW 6 minor 300 references
How similar are narrow-line Seyfert 1 galaxies and high-z type 1 AGN?
T0 review · 0 major / 6 minor · reviewed 2026-08-05 · deepseek-v4-flash
Pith's one-line read Despite real differences, local narrow-line Seyfert 1 galaxies can serve as a low-redshift laboratory for understanding the extreme accretion physics and early growth of the black holes JWST is finding at high redshift.
desk verdict A solid, honest review that makes the NLS1–high-z analogy plausible, but its main quantitative claim rests on a virial assumption the paper itself flags as questionable. 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 comparison rests on the NLS1 classification itself: the FWHM(Hβ) < 2000 km/s threshold that selects low-mass, high-Eddington AGN in the local universe, carried to high redshift by the empirical FWHM(Hα) ≈ 0.8–0.9 FWHM(Hβ) scaling so that Hα-based JWST samples can be placed on the same plane. The physical driver is the Eddington ratio, which organizes the quasar main sequence (eigenvector 1) and is invoked to explain the steep X-ray spectra, outflows, Fe II strength, and disk-wind signatures in both populations. The virial mass estimator M_BH = f R_BLR v^2/G connects observed line widths to black hole mass, and is the load-bearing step that makes the NLS1 analogy quantitative.
What would settle it
Take a sample of little red dots and measure the Hα line profile shape and polarization at high signal-to-noise: if the profiles are exponential and substantially polarized, consistent with electron scattering rather than rotation, then virial masses and the NLS1 analogy fail for those objects. A second decisive test would be reverberation mapping of a bright or lensed high-z NLS1-like AGN to see whether the BLR size–luminosity relation holds there as it does locally.
Extended reading notes
Core claim
On the paper's own terms, the central claim is that the physical state of most JWST-discovered broad-line AGN at z>4—including little red dots—is a high-redshift counterpart of the local NLS1 phenomenon: an undermassive black hole accreting at or above the Eddington limit, whose broad emission lines are narrow because the gravitational potential is shallow. The authors support this by showing that the defining NLS1 properties (FWHM(Hβ) < 2000 km/s, low black hole mass, high Eddington ratio, steep and variable X-ray spectrum, strong Fe II, outflows, late-type host) map onto what JWST sees, once selection effects and the Hα-to-Hβ width conversion are accounted for. They also catalogue the genu
Load-bearing premise
The whole comparison assumes that the measured widths of the broad emission lines trace the gravitational (virial) motion of gas around the black hole, so that line width is a faithful mass indicator; if electron scattering or outflow broadening dominates in high-z sources, the mass estimates and the NLS1 classification lose their footing.
Editorial extensions
If this is right
- If the analogy holds, local NLS1s become a practical laboratory for studying super-Eddington accretion, disk winds, and jet launching under conditions similar to those of early-universe AGN, at distances where detailed multiwavelength monitoring is feasible.
- More than half of JWST-identified AGN at high redshift should be treated as NLS1-like, implying that census statistics for early black hole growth should be interpreted with the NLS1 physical picture (low masses, high Eddington ratios) rather than the classical massive-quasar picture.
- The X-ray weakness of many high-z AGN and little red dots can be understood as a consequence of high accretion rate—coronal cooling, winds, and shielding—rather than requiring hidden or absent AGN, informing how X-ray surveys select against early growth phases.
- The reversed black-hole-to-host mass ratio in high-z sources, compared to NLS1s, implies that the local NLS1 population is a later, secularly evolved descendant rather than a direct analogue of the earliest growth phase; comparisons must account for this offset.
- Future simultaneous radio, X-ray, and optical monitoring of NLS1s can predict the variability patterns expected of high-z AGN, providing observable tests for the analogy.
Reading between the lines
- If the exponential line profiles seen in some little red dots are confirmed as electron-scattering broadening rather than virial motion, the virial mass estimates—and hence the NLS1 classification of those objects—would need revision; the paper itself flags this as an open alternative, and a direct test is to measure polarization or profile shape across a sample of LRDs.
- The parent-population puzzle for high-z blazars (too few known parents for the number of beamed sources) mirrors the same problem for jetted NLS1s, suggesting that some of the missing parents at high redshift may be compact steep-spectrum or low-luminosity compact sources, analogous to the LLC/NLS1 connection locally.
- The V-shaped SED that defines little red dots may exist as a rare, overlooked phase among local NLS1s; systematically searching archival SEDs of large NLS1 samples for such shapes could identify a local LRD population and test whether the dust-cocoon phase is truly absent at z~0.
Editorial analysis
A structured set of objections, weighed in public.
Referee Report
Summary. This review synthesizes the multiwavelength properties of local narrow-line Seyfert 1 galaxies (NLS1s) and compares them with high-redshift type 1 AGN discovered by JWST, including little red dots (LRDs). After summarizing radio, UV/optical/NIR, X-ray, and gamma-ray observations, the authors argue that NLS1s are low-mass, high-Eddington AGN in an early evolutionary stage, and that many high-redshift JWST AGN satisfy the formal FWHM-based NLS1 criterion, with comparable black hole masses, Eddington ratios, and some X-ray properties. The paper also emphasizes key differences, such as low metallicity, compact host galaxies, X-ray weakness, and the possible electron-scattering origin of LRD line broadening. The central conclusion is that, despite these differences, local NLS1s are useful laboratories for understanding the extreme accretion physics of high-redshift AGN.
Significance. If the analogy holds, the paper provides a valuable bridge between the well-studied local NLS1 population and the newly discovered JWST AGN, enabling detailed tests of super-Eddington accretion physics in the early universe. The review is timely and comprehensive, covering radio through gamma rays, and it is careful to list selection effects, S/N limitations, and the Halpha/Hbeta scaling issue. A particular strength is that the authors repeatedly acknowledge the major caveat that virial black-hole mass estimates may be invalid for sources whose line broadening is due to electron scattering rather than virial motion. The paper contains no new fits or machine-checked derivations, but its synthetic value and balanced treatment make it a useful reference for the community.
minor comments (6)
- [Section 7.1] The quantitative statement 'more than half of the JWST-identified AGN at high redshift should be classified as NLS1s' is presented without an explicit qualifier, even though the same section later notes that (a) the Halpha-to-Hbeta FWHM scaling is not 1:1, (b) spectral typing is unreliable at low S/N, (c) most LRDs show line profiles closer to intermediate-type Seyferts than to Lorentzian NLS1 profiles, and (d) an exponential/electron-scattering broadening mechanism would invalidate virial mass interpretations. Please add an explicit qualifier such as 'under the virial assumption' at the point of the statistic, and reconcile it with the later statement that only a handful of LRDs show the typical NLS1 Lorentzian profile.
- [Section 3.3, Eq. (2)] The velocity term in Eq. (2) appears as 'v2' rather than v^2; please ensure the superscript is typeset correctly.
- [Section 4 / reference list] The name 'Lvminari et al. 2021' appears both in the text and in the references; this is likely a typo for 'Luminari et al. 2021'.
- [Section 2.1] In the sentence reporting the 4000 reliably classified NLS1s, a comma is missing before the citation 'Berton et al. (2020a)'.
- [Section 7.1] The phrase 'with a FWHM of less than ∼2000 km s−1' is grammatically awkward; consider 'with FWHM < ∼2000 km s−1'. Also, clarify whether 'formally classified as NLS1s' refers only to the FWHM threshold or also to the other NLS1 criteria (e.g., Fe II strength and [O III]/Hbeta ratio) that are not always measurable in high-z spectra.
- [Abstract / Introduction] The terms 'type 1' and 'type 1 AGN' are used inconsistently; choose a single capitalization convention.
Circularity Check
No circularity: the paper is a literature review whose comparative claims rest on cited external measurements, and the main quantitative claim is explicitly conditional and self-flagged as caveated.
full rationale
This is a review/synthesis paper, not a derivation. The central claim that NLS1s can inform high-z accretion physics is supported by comparing independently published properties (line widths, black hole masses, Eddington ratios, X-ray slopes, host galaxies) of local NLS1 samples and JWST-discovered AGN. I checked the one quantitative step, Section 7.1's 'more than half of the JWST-identified AGN at high redshift should be classified as NLS1s'. It is explicitly framed as a classification exercise using FWHM(Hα) ~ 0.8-0.9 FWHM(Hβ) quoted from Rakshit et al. (2017) and Paliya et al. (2024), applied to the published Hα FWHM distribution of Maiolino et al. (2025); it is not a fit to data being relabeled as a prediction. The paper itself flags the main vulnerability in the same section: 'the line profile could be exponential, thus pointing toward an electron scattering origin for the line broadening' and 'If this were true, the black hole mass estimates derived from the emission lines would have to be corrected for this factor, since the virial theorem cannot be applied'. That is a scientific caveat about the virial assumption, not a circular reduction. The many citations to Berton, Järvelä, Tortosa, and Mazzucchelli are normal expert self-citations supporting specific empirical claims (e.g., Lorentzian line profiles, jet/host properties, X-ray comparisons); none is invoked as an unverified uniqueness theorem or as the sole justification for the high-z comparison. No equation in the paper reduces to its inputs by construction, and no fitted parameter is renamed as a prediction. Score 0.
Assumptions & free parameters
free parameters (1)
- FWHM(Halpha)/FWHM(Hbeta) scaling factor =
0.8-0.9
assumptions (4)
- domain assumption Broad-line region gas is virialized: MBH = f R_BLR v^2 / G (Eq. 2, Section 3.3).
- domain assumption The NLS1 definition, FWHM(Hbeta) < 2000 km/s, can be applied to high-z sources with FWHM(Halpha) scaled by 0.8-0.9.
- domain assumption The selected high-z AGN are type 1 sources with an unobscured nucleus.
- standard math Standard physics: Eddington limit, c, G, M_sun, Compton scattering, virial theorem.
Cite this review
Pith. "Pith review of How similar are narrow-line Seyfert 1 galaxies and high-z type 1 AGN?." pith.science (2026). https://pith.science/paper/GMMOFDTQ
@misc{pith2026250903576,
author = {Pith},
title = {Pith review of: How similar are narrow-line Seyfert 1 galaxies and high-z type 1 AGN?},
year = {2026},
howpublished = {\url{https://pith.science/paper/GMMOFDTQ}},
note = {Machine review of arXiv:2509.03576}
}
abstract
The recent observations of highly accreting supermassive black holes (SMBH) at very high redshift ($>$4) with the James Webb Space Telescope (JWST) allowed us to shed light for the very first time on the early evolutionary phases of active galactic nuclei (AGN). Perhaps unsurprisingly, several of the physical properties observed in these new objects, including those known as little red dots (LRDs), are closely reminiscent of the low-mass and high-Eddington AGN in the local Universe, and in particular of the class of narrow-line Seyfert 1 (NLS1) galaxies. However, some differences also emerged, likely due to the radically different evolutionary path and the environment where LRDs and NLS1s live. In this work, we review the multiwavelength properties of local NLS1s and compare them with type 1 AGN found at high-$z$, showing that despite some differences, the study of NLS1s can be extremely useful to better understand the extreme accretion physics of high-$z$ quasars and the early stages of AGN evolution.
Reference graph
Works this paper leans on
-
[1]
A., Ackermann, M., Ajello, M., et al
Abdo, A. A., Ackermann, M., Ajello, M., et al. 2010, ApJ, 720, 912
2010
-
[2]
2020, ApJS, 247, 33
Abdollahi, S., Acero, F., Ackermann, M., et al. 2020, ApJS, 247, 33
2020
-
[3]
A., Czerny, B., Lasota, J
Abramowicz, M. A., Czerny, B., Lasota, J. P., & Szuszkiewicz, E. 1988, ApJ, 332, 646
1988
-
[4]
Abramowicz, M. A. & Fragile, P. C. 2013, Living Reviews in Relativity, 16, 1
2013
-
[5]
2015, A&A, 575, A55
Angelakis, E., Fuhrmann, L., Marchili, N., et al. 2015, A&A, 575, A55
2015
-
[6]
2019, A&A, 627, A148 Ant´on, S., Browne, I
Angioni, R., Ros, E., Kadler, M., et al. 2019, A&A, 627, A148 Ant´on, S., Browne, I. W. A., & March˜a, M. J. 2008, A&A, 490, 583
2019
-
[7]
A., Branduardi-Raymont, G., Culhane, J
Arnaud, K. A., Branduardi-Raymont, G., Culhane, J. L., et al. 1985, MNRAS, 217, 105 Ba˜nados, E., Momjian, E., Connor, T., et al. 2025, Nature Astronomy, 9, 293 Ba˜nados, E., Venemans, B. P., Mazzucchelli, C., et al. 2018, Nature, 553, 473
1985
-
[8]
R., McDuffie, J
Ballantyne, D. R., McDuffie, J. R., & Rusin, J. S. 2011, ApJ, 734, 112
2011
Show all 300 references
-
[9]
S., Du, P., et al
Bao, D.-W., Brotherton, M. S., Du, P., et al. 2022, ApJS, 262, 14 Barqu´ın-Gonz´alez, L., Mateos, S., Carrera, F. J., et al. 2024, A&A, 687, A159
2022
-
[10]
G., Kocevski, D
Barro, G., P´erez-Gonz´alez, P. G., Kocevski, D. D., et al. 2024, ApJ, 963, 128
2024
-
[11]
2025, A&A, 699, A335
Belladitta, S., Ba˜nados, E., Xie, Z.-L., et al. 2025, A&A, 699, A335
2025
-
[12]
C., Denney, K
Bentz, M. C., Denney, K. D., Grier, C. J., et al. 2013, ApJ, 767, 149
2013
-
[13]
A., Wyithe, J
Berger, S., Marshall, M. A., Wyithe, J. S. B., et al. 2025, arXiv e-prints, arXiv:2506.12130
2025 arXiv
-
[14]
2018, A&A, 614, A87
Berton, M., Congiu, E., J¨arvel¨a, E., et al. 2018, A&A, 614, A87
2018
-
[15]
2017, Frontiers in Astronomy and Space Sciences, 4, 8
Berton, M., Foschini, L., Caccianiga, A., et al. 2017, Frontiers in Astronomy and Space Sciences, 4, 8
2017
-
[16]
2015, A&A, 578, A28
Berton, M., Foschini, L., Ciroi, S., et al. 2015, A&A, 578, A28
2015
-
[17]
2021, A&A, 654, A125
Berton, M., Peluso, G., Marziani, P., et al. 2021, A&A, 654, A125
2021
-
[18]
& Zhao, Y
Bian, W. & Zhao, Y . 2004, MNRAS, 352, 823
2004
-
[19]
F., Guainazzi, M., Matt, G., & Ponti, G
Bianchi, S., Bonilla, N. F., Guainazzi, M., Matt, G., & Ponti, G. 2009, A&A, 501, 915
2009
-
[20]
J., Malizia, A., Bazzano, A., et al
Bird, A. J., Malizia, A., Bazzano, A., et al. 2007, ApJS, 170, 175
2007
-
[21]
2019, A&A, 630, A59
Bischetti, M., Maiolino, R., Carniani, S., et al. 2019, A&A, 630, A59
2019
-
[22]
2019, ARA&A, 57, 467
Blandford, R., Meier, D., & Readhead, A. 2019, ARA&A, 57, 467
2019
-
[23]
J., Page, M
Blustin, A. J., Page, M. J., Fuerst, S. V ., Branduardi-Raymont, G., & Ashton, C. E. 2005, A&A, 431, 111 Bogd´an, ´A., Goulding, A. D., Natarajan, P., et al. 2024, Nature Astronomy, 8, 126
2005
-
[24]
N., & Fink, H
Boller, T., Brandt, W. N., & Fink, H. 1996, A&A, 305, 53
1996
-
[25]
Boroson, T. A. & Green, R. F. 1992, ApJS, 80, 109
1992
-
[26]
2004, AJ, 127, 3168
Botte, V ., Ciroi, S., Rafanelli, P., & Di Mille, F. 2004, AJ, 127, 3168
2004
-
[27]
N., Dewangan, G
Braito, V ., Reeves, J. N., Dewangan, G. C., et al. 2007, ApJ, 670, 978
2007
-
[28]
N., Mathur, S., & Elvis, M
Brandt, W. N., Mathur, S., & Elvis, M. 1997, MNRAS, 285, L25
1997
-
[29]
2014, MNRAS, 441, 172
Caccianiga, A., Ant´on, S., Ballo, L., et al. 2014, MNRAS, 441, 172
2014
-
[30]
2015, MNRAS, 451, 1795
Caccianiga, A., Ant´on, S., Ballo, L., et al. 2015, MNRAS, 451, 1795
2015
-
[31]
2017, MNRAS, 464, 1474
Caccianiga, A., Dallacasa, D., Ant´on, S., et al. 2017, MNRAS, 464, 1474
2017
-
[32]
2013, MNRAS, 431, 210
Calderone, G., Ghisellini, G., Colpi, M., & Dotti, M. 2013, MNRAS, 431, 210
2013
-
[33]
M., Netzer, H., Lira, P., Trakhtenbrot, B., & Mej´ıa-Restrepo, J
Capellupo, D. M., Netzer, H., Lira, P., Trakhtenbrot, B., & Mej´ıa-Restrepo, J. 2015, MNRAS, 446, 3427
2015
-
[34]
Castor, J. I. & Lamers, H. J. G. L. M. 1979, ApJS, 39, 481
1979
-
[35]
Chamani, W., Savolainen, T., Hada, K., & Xu, M. H. 2021, A&A, 652, A14
2021
-
[36]
B., Wang, F., Zhang, H., et al
Champagne, J. B., Wang, F., Zhang, H., et al. 2025, ApJ, 981, 113
2025
-
[37]
N., & Gallagher, S
Chartas, G., Brandt, W. N., & Gallagher, S. C. 2003, ApJ, 595, 85
2003
-
[38]
N., Gallagher, S
Chartas, G., Brandt, W. N., Gallagher, S. C., & Garmire, G. P. 2002, ApJ, 579, 169
2002
-
[39]
2018, A&A, 615, A167
Chen, S., Berton, M., La Mura, G., et al. 2018, A&A, 615, A167
2018
-
[40]
2024, ApJ, 963, 32
Chen, S., Kharb, P., Silpa, S., et al. 2024, ApJ, 963, 32
2024
-
[41]
B., Edwards, P
Chen, S., Stevens, J. B., Edwards, P. G., et al. 2022, MNRAS, 512, 471
2022
-
[42]
2009, ApJ, 695, L130
Chen, Y .-M., Wang, J.-M., Yan, C.-S., Hu, C., & Zhang, S. 2009, ApJ, 695, L130
2009
-
[43]
M., & Norman, C
Chiaberge, M., Gilli, R., Lotz, J. M., & Norman, C. 2015, ApJ, 806, 147
2015
-
[44]
2018, Nature Astronomy, 2, 176
Cicone, C., Brusa, M., Ramos Almeida, C., et al. 2018, Nature Astronomy, 2, 176
2018
-
[45]
2003, MNRAS, 346, 447
Cirasuolo, M., Celotti, A., Magliocchetti, M., & Danese, L. 2003, MNRAS, 346, 447
2003
-
[46]
2017, A&A, 603, A32
Congiu, E., Berton, M., Giroletti, M., et al. 2017, A&A, 603, A32
2017
-
[47]
2020, MNRAS, 499, 3149
Congiu, E., Kharb, P., Tarchi, A., et al. 2020, MNRAS, 499, 3149
2020
-
[48]
2016, MNRAS, 462, 1256
Cracco, V ., Ciroi, S., Berton, M., et al. 2016, MNRAS, 462, 1256
2016
-
[49]
M., Kraemer, S
Crenshaw, D. M., Kraemer, S. B., & Gabel, J. R. 2003, AJ, 126, 1690
2003
-
[50]
2025, A&A, 696, A74
Crepaldi, L., Berton, M., Dalla Barba, B., et al. 2025, A&A, 696, A74
2025
-
[51]
C., Gallo, L., & Ross, R
Crummy, J., Fabian, A. C., Gallo, L., & Ross, R. R. 2006, MNRAS, 365, 1067
2006
-
[52]
2019, Universe, 5, 131
Czerny, B. 2019, Universe, 5, 131
2019
-
[53]
2009, ApJ, 698, 840 Dalla Bont`a, E., Peterson, B
Czerny, B., Siemiginowska, A., Janiuk, A., Nikiel-Wroczy´nski, B., & Stawarz, Ł. 2009, ApJ, 698, 840 Dalla Bont`a, E., Peterson, B. M., Bentz, M. C., et al. 2020, ApJ, 903, 112 Dalla Bont`a, E., Peterson, B. M., Grier, C. J., et al. 2025, A&A, 696, A48 D’Ammando, F. 2020, MNRA...
2009
-
[54]
& Netzer, H
Davidson, K. & Netzer, H. 1979, Reviews of Modern Physics, 51, 715 de Gouveia Dal Pino, E. M., Piovezan, P. P., & Kadowaki, L. H. S. 2010, A&A, 518, A5 de Graaff, A., Rix, H.-W., Naidu, R. P., et al. 2025, arXiv e-prints, arXiv:2503.16600 De Rosa, G., Fausnaugh, M. M., Grier, ...
1979 arXiv
-
[55]
2008, MNRAS, 386, L15
Decarli, R., Dotti, M., Fontana, M., & Haardt, F. 2008, MNRAS, 386, L15
2008
-
[56]
P., et al
Decarli, R., Walter, F., Venemans, B. P., et al. 2017, Nature, 545, 457
2017
-
[57]
P., et al
Decarli, R., Walter, F., Venemans, B. P., et al. 2018, ApJ, 854, 97 del Palacio, S., Bosch-Ramon, V ., & Romero, G. E. 2019, A&A, 623, A101 D’Eugenio, F., Juodˇzbalis, I., Ji, X., et al. 2025, arXiv e-prints, arXiv:2506.14870
2018
-
[58]
D., et al
Ding, X., Onoue, M., Silverman, J. D., et al. 2023, Nature, 621, 51
2023
-
[59]
& Wang, J.-M
Du, P. & Wang, J.-M. 2019, ApJ, 886, 42
2019
-
[60]
2018, ApJ, 856, 6 Durr´e, M
Du, P., Zhang, Z.-X., Wang, K., et al. 2018, ApJ, 856, 6 Durr´e, M. & Mould, J. 2022, MNRAS, 509, 2377
2018
-
[61]
2024, ApJ, 974, 275
Eilers, A.-C., Mackenzie, R., Pizzati, E., et al. 2024, ApJ, 974, 275
2024
-
[62]
P., Fan, X., et al
Endsley, R., Stark, D. P., Fan, X., et al. 2022, MNRAS, 512, 4248
2022
-
[63]
C., Ballantyne, D
Fabian, A. C., Ballantyne, D. R., Merloni, A., et al. 2002, Monthly Notices of the Royal Astronomical Society, 331, L35–L39
2002
-
[64]
C., Zoghbi, A., Ross, R
Fabian, A. C., Zoghbi, A., Ross, R. R., et al. 2009, Nature, 459, 540
2009
-
[65]
Fan, X., Ba˜nados, E., & Simcoe, R. A. 2023, ARA&A, 61, 373
2023
-
[66]
L., Davis, M., et al
Fan, X., White, R. L., Davis, M., et al. 2000, AJ, 120, 1167
2000
-
[67]
1995, A&A, 302, 317
Fanti, C., Fanti, R., Dallacasa, D., et al. 1995, A&A, 302, 317
1995
-
[68]
M., Grier, C
Fausnaugh, M. M., Grier, C. J., Bentz, M. C., et al. 2017, ApJ, 840, 97
2017
-
[69]
& Merritt, D
Ferrarese, L. & Merritt, D. 2000, ApJ, 539, L9
2000
-
[70]
2017, A&A, 601, A143
Fiore, F., Feruglio, C., Shankar, F., et al. 2017, A&A, 601, A143
2017
-
[71]
2011, in Narrow-Line Seyfert 1 Galaxies and their Place in the
Foschini, L. 2011, in Narrow-Line Seyfert 1 Galaxies and their Place in the
2011
-
[72]
2012, in Proceedings of Nuclei of Seyfert galaxies and QSOs - Central engine & conditions of star formation, Proc
Foschini, L. 2012, in Proceedings of Nuclei of Seyfert galaxies and QSOs - Central engine & conditions of star formation, Proc. of Science, V ol. Seyfert 2012, id. 10
2012
-
[73]
2014, International Journal of Modern Physics Conference Series, 28, 1460188
Foschini, L. 2014, International Journal of Modern Physics Conference Series, 28, 1460188
2014
-
[74]
2017, Frontiers in Astronomy and Space Sciences, 4, 6
Foschini, L. 2017, Frontiers in Astronomy and Space Sciences, 4, 6
2017
-
[75]
2020, Universe, 6, 136
Foschini, L. 2020, Universe, 6, 136
2020
-
[76]
2015, A&A, 575, A13
Foschini, L., Berton, M., Caccianiga, A., et al. 2015, A&A, 575, A13
2015
-
[77]
Y ., et al
Foschini, L., Ghisellini, G., Kovalev, Y . Y ., et al. 2011, MNRAS, 413, 1671
2011
-
[78]
L., Andernach, H., et al
Foschini, L., Lister, M. L., Andernach, H., et al. 2022, Universe, 8, 587
2022
-
[79]
L., Ant´on, S., et al
Foschini, L., Lister, M. L., Ant´on, S., et al. 2021, Universe, 7, 372
2021
-
[80]
2009, Advances in Space Research, 43, 889
Foschini, L., Maraschi, L., Tavecchio, F., et al. 2009, Advances in Space Research, 43, 889
2009
-
[81]
1998, MNRAS, 299, 433
Fossati, G., Maraschi, L., Celotti, A., Comastri, A., & Ghisellini, G. 1998, MNRAS, 299, 433
1998
-
[82]
1992, A&A, 259, 445
Fraix-Burnet, D. 1992, A&A, 259, 445
1992
-
[83]
2017b, Frontiers in Astronomy and Space Sciences, 4, 1 Gab´anyi, K
Fraix-Burnet, D., Marziani, P., D’Onofrio, M., & Dultzin, D. 2017b, Frontiers in Astronomy and Space Sciences, 4, 1 Gab´anyi, K. ´E., Frey, S., Perger, K., & Kun, E. 2025, Universe, 11, 83
2025
-
[84]
2018, in Proceedings of Science, vol
Gallo, L. 2018, in Proceedings of Science, vol. Revisiting narrow-line Seyfert 1 galaxies and their place in the Universe, 34
2018
-
[85]
Gallo, L. C. 2006, MNRAS, 368, 479
2006
-
[86]
C., Blue, D
Gallo, L. C., Blue, D. M., Grupe, D., Komossa, S., & Wilkins, D. R. 2018, MNRAS, 478, 2557
2018
-
[87]
Gaskell, C. M. 2009, NewAR, 53, 140
2009
-
[88]
2016, Galaxies, 4, 36
Ghisellini, G. 2016, Galaxies, 4, 36
2016
-
[89]
1998, MNRAS, 301, 451
Ghisellini, G., Celotti, A., Fossati, G., Maraschi, L., & Comastri, A. 1998, MNRAS, 301, 451
1998
-
[90]
& Tavecchio, F
Ghisellini, G. & Tavecchio, F. 2008, MNRAS, 386, L28
2008
-
[91]
J., Duncan, K
Gloudemans, A. J., Duncan, K. J., Eilers, A.-C., et al. 2025, arXiv e-prints, arXiv:2501.04912
2025 arXiv
-
[92]
J., Duncan, K
Gloudemans, A. J., Duncan, K. J., Saxena, A., et al. 2022, A&A, 668, A27
2022
-
[93]
R., Korista, K
Goad, M. R., Korista, K. T., & Ruff, A. J. 2012, MNRAS, 426, 3086 G´omez, J.-L., Marscher, A. P., Alberdi, A., Jorstad, S. G., & Garc´ıa-Mir´o, C. 2000, Science, 289, 2317
2012
-
[94]
Goodrich, R. W. 1989, ApJ, 342, 224 Gravity Collaboration, Sturm, E., Dexter, J., et al. 2018, Nature, 563, 657
1989
-
[95]
E., Hood, C
Greene, J. E., Hood, C. E., Barth, A. J., et al. 2010, ApJ, 723, 409
2010
-
[96]
E., Labbe, I., Goulding, A
Greene, J. E., Labbe, I., Goulding, A. D., et al. 2024, ApJ, 964, 39
2024
-
[97]
J., Peterson, B
Grier, C. J., Peterson, B. M., Pogge, R. W., et al. 2012, ApJ, 755, 60
2012
-
[98]
J., Trump, J
Grier, C. J., Trump, J. R., Shen, Y ., et al. 2017, ApJ, 851, 21
2017
-
[99]
2023, A&A, 675, A198
Gronkiewicz, D., R´o˙za´nska, A., Petrucci, P.-O., & Belmont, R. 2023, A&A, 675, A198
2023
-
[100]
& Mathur, S
Grupe, D. & Mathur, S. 2004, ApJ, 606, L41
2004
-
[101]
2004, AJ, 127, 3161
Grupe, D., Mathur, S., & Komossa, S. 2004, AJ, 127, 3161
2004
-
[102]
& Chen, Y
Gu, M. & Chen, Y . 2010, AJ, 139, 2612
2010
-
[103]
2015, ApJS, 221, 3
Gu, M., Chen, Y ., Komossa, S., et al. 2015, ApJS, 221, 3
2015
-
[104]
& Maraschi, L
Haardt, F. & Maraschi, L. 1993, ApJ, 413, 507
1993
-
[105]
Halpern, J. P. 1984, ApJ, 281, 90
1984
-
[106]
S., Berton, M., Ant´on, S., et al
Hamilton, T. S., Berton, M., Ant´on, S., et al. 2021, MNRAS, 504, 5188
2021
-
[107]
2023, ApJ, 959, 39
Harikane, Y ., Zhang, Y ., Nakajima, K., et al. 2023, ApJ, 959, 39
2023
-
[108]
Heckman, T. M. & Best, P. N. 2014, ARA&A, 52, 589
2014
-
[109]
& Sunyaev, R
Heinz, S. & Sunyaev, R. A. 2003, MNRAS, 343, L59
2003
-
[110]
& Lindfors, E
Hovatta, T. & Lindfors, E. 2019, New A Rev., 87, 101541
2019
-
[111]
2022, A&A, 659, A124
Husemann, B., Singha, M., Scharw¨achter, J., et al. 2022, A&A, 659, A124
2022
-
[112]
2025, A&A, 698, A158
Ighina, L., Caccianiga, A., Moretti, A., et al. 2025, A&A, 698, A158
2025
-
[113]
2025, arXiv e-prints, arXiv:2503.05537
Inayoshi, K. 2025, arXiv e-prints, arXiv:2503.05537
2025 arXiv
-
[114]
& Maiolino, R
Inayoshi, K. & Maiolino, R. 2025, ApJ, 980, L27
2025
-
[115]
2020, ARA&A, 58, 27
Inayoshi, K., Visbal, E., & Haiman, Z. 2020, ARA&A, 58, 27
2020
-
[116]
T., Fukazawa, Y ., et al
Itoh, R., Tanaka, Y . T., Fukazawa, Y ., et al. 2013, ApJ, 775, L26
2013
-
[117]
2019, PASJ, 71, 111 J¨arvel¨a, E., Berton, M., Ciroi, S., et al
Izumi, T., Onoue, M., Matsuoka, Y ., et al. 2019, PASJ, 71, 111 J¨arvel¨a, E., Berton, M., Ciroi, S., et al. 2020, A&A, 636, L12 J¨arvel¨a, E., Dahale, R., Crepaldi, L., et al. 2022, A&A, 658, A12 J¨arvel¨a, E., L¨ahteenm¨aki, A., & Berton, M. 2018, A&A, 619, A69 J¨arvel¨a, E....
2019
-
[118]
M., & Davis, S
Jiang, Y .-F., Stone, J. M., & Davis, S. W. 2014, ApJ, 796, 106
2014
-
[119]
2017, MNRAS, 468, 3663
Jin, C., Done, C., & Ward, M. 2017, MNRAS, 468, 3663
2017
-
[120]
Jolley, E. J. D., Kuncic, Z., Bicknell, G. V ., & Wagner, S. 2009, MNRAS, 400, 1521 Juodˇzbalis, I., Maiolino, R., Baker, W. M., et al. 2025, arXiv e-prints, arXiv:2504.03551 Juodˇzbalis, I., Maiolino, R., Baker, W. M., et al. 2024, Nature, 636, 594
2009
-
[121]
Kadowaki, L. H. S., de Gouveia Dal Pino, E. M., & Singh, C. B. 2015, ApJ, 802, 113
2015
-
[122]
A., Lohfink, A., et al
Kara, E., Garc´ıa, J. A., Lohfink, A., et al. 2017, MNRAS, 468, 3489
2017
-
[123]
S., Netzer, H., et al
Kaspi, S., Smith, P. S., Netzer, H., et al. 2000, ApJ, 533, 631
2000
-
[124]
I., Sramek, R., Schmidt, M., Shaffer, D
Kellermann, K. I., Sramek, R., Schmidt, M., Shaffer, D. B., & Green, R. 1989, AJ, 98, 1195
1989
-
[125]
2022, A&A, 664, A39
Khusanova, Y ., Ba˜nados, E., Mazzucchelli, C., et al. 2022, A&A, 664, A39
2022
-
[126]
2024, MNRAS, 531, 550
King, A. 2024, MNRAS, 531, 550
2024
-
[127]
& Pounds, K
King, A. & Pounds, K. 2015, ARA&A, 53, 115
2015
-
[128]
D., Onoue, M., Inayoshi, K., et al
Kocevski, D. D., Onoue, M., Inayoshi, K., et al. 2023, ApJ, 954, L4
2023
-
[129]
2023, ApJ, 957, L7
Kokorev, V ., Fujimoto, S., Labbe, I., et al. 2023, ApJ, 957, L7
2023
-
[130]
& Zetzl, M
Kollatschny, W. & Zetzl, M. 2011, Nature, 470, 366
2011
-
[131]
& Zetzl, M
Kollatschny, W. & Zetzl, M. 2013, A&A, 558, A26
2013
-
[132]
2018, in Proceedings of Science, vol
Komossa, S. 2018, in Proceedings of Science, vol. Revisiting narrow-line Seyfert 1 galaxies and their place in the Universe, 15
2018
-
[133]
& Meerschweinchen, J
Komossa, S. & Meerschweinchen, J. 2000, A&A, 354, 411
2000
-
[134]
2006, AJ, 132, 531
Komossa, S., V oges, W., Xu, D., et al. 2006, AJ, 132, 531
2006
-
[135]
Komossa, S. & Xu, D. 2007, ApJ, 667, L33
2007
-
[136]
2008, ApJ, 680, 926
Komossa, S., Xu, D., Zhou, H., Storchi-Bergmann, T., & Binette, L. 2008, ApJ, 680, 926
2008
-
[137]
2024, arXiv e-prints, arXiv:2406.08312
Komossa, S., Yao, S., Grupe, D., & Kraus, A. 2024, arXiv e-prints, arXiv:2406.08312
2024 arXiv
-
[138]
& Blaes, O
Koratkar, A. & Blaes, O. 1999, PASP, 111, 1
1999
-
[139]
Koratkar, A. P. & Gaskell, C. M. 1991, ApJ, 370, L61
1991
-
[140]
Kormendy, J. & Ho, L. C. 2013, ARA&A, 51, 511 Kovaˇcevi´c, J., Popovi´c, L. ˇC., & Dimitrijevi´c, M. S. 2010, ApJS, 189, 15
2013
-
[141]
2001, AJ, 121, 702
Krongold, Y ., Dultzin-Hacyan, D., & Marziani, P. 2001, AJ, 121, 702
2001
-
[142]
L., Santos-Lle´o, M., et al
Krongold, Y ., Longinotti, A. L., Santos-Lle´o, M., et al. 2021, The Astrophysical Journal, 917, 39
2021
-
[143]
& Bicknell, G
Kuncic, Z. & Bicknell, G. V . 2004, ApJ, 616, 669
2004
-
[144]
J., et al
Kynoch, D., Landt, H., Ward, M. J., et al. 2019, MNRAS, 487, 181 Labb´e, I., van Dokkum, P., Nelson, E., et al. 2023, Nature, 616, 266
2019
-
[145]
C., Chakravorty, S., & Kembhavi, A
Laha, S., Guainazzi, M., Dewangan, G. C., Chakravorty, S., & Kembhavi, A. K. 2014, MNRAS, 441, 2613
2014
-
[146]
S., Reeves, J., et al
Laha, S., Reynolds, C. S., Reeves, J., et al. 2021, Nature Astronomy, 5, 13 L¨ahteenm¨aki, A., J¨arvel¨a, E., Hovatta, T., et al. 2017, A&A, 603, A100 L¨ahteenm¨aki, A., J¨arvel¨a, E., Ramakrishnan, V ., et al. 2018, A&A, 614, L1
2021
-
[147]
S., Assef, R
Lambert, T. S., Assef, R. J., Mazzucchelli, C., et al. 2024, A&A, 689, A331
2024
-
[148]
J., Balokovi´c, M., et al
Landt, H., Ward, M. J., Balokovi´c, M., et al. 2017, MNRAS, 464, 2565
2017
-
[149]
2012, Probing the variable, relativistic wind in the high-z QSO HS 1700+6416, XMM-Newton Proposal
Lanzuisi, G. 2012, Probing the variable, relativistic wind in the high-z QSO HS 1700+6416, XMM-Newton Proposal
2012
-
[150]
2016, A&A, 590, A77
Lanzuisi, G., Perna, M., Comastri, A., et al. 2016, A&A, 590, A77
2016
-
[151]
L., Finkelstein, S
Larson, R. L., Finkelstein, S. L., Kocevski, D. D., et al. 2023, ApJ, 953, L29
2023
-
[152]
A., Aftab, A., Whalen, D
Latif, M. A., Aftab, A., Whalen, D. J., & Mezcua, M. 2025, arXiv e-prints, arXiv:2502.03742
2025 arXiv
-
[153]
M., Mushotzky, R
Leighly, K. M., Mushotzky, R. F., Nandra, K., & Forster, K. 1997, The Astrophysical Journal, 489, L25
1997
-
[154]
2023, A&A, 676, A9
Li, Y .-J., Liao, N.-H., Sheng, Z.-f., et al. 2023, A&A, 676, A9
2023
-
[155]
Liao, M. & Gu, M. 2020, MNRAS, 491, 92
2020
-
[156]
2015, ArXiv e-prints [1510.05584]
Liao, N.-H., Liang, Y .-F., Weng, S.-S., et al. 2015, ArXiv e-prints [1510.05584]
2015 arXiv
-
[157]
2025b, arXiv e-prints, arXiv:2507.10659
Lin, X., Fan, X., Cai, Z., et al. 2025b, arXiv e-prints, arXiv:2507.10659
-
[158]
2024, ApJ, 974, 147
Lin, X., Wang, F., Fan, X., et al. 2024, ApJ, 974, 147
2024
-
[159]
L., Aller, M
Lister, M. L., Aller, M. F., Aller, H. D., et al. 2016, AJ, 152, 12
2016
-
[160]
2017, ApJS, 232, 8
Liu, T., Tozzi, P., Wang, J.-X., et al. 2017, ApJS, 232, 8
2017
-
[161]
L., Salom´e, Q., Feruglio, C., et al
Longinotti, A. L., Salom´e, Q., Feruglio, C., et al. 2023, MNRAS, 521, 2134 16
2023
-
[162]
L., Vega, O., Krongold, Y ., et al
Longinotti, A. L., Vega, O., Krongold, Y ., et al. 2018, ApJ, 867, L11
2018
-
[163]
2024, A&A, 689, A128
Lupi, A., Trinca, A., V olonteri, M., Dotti, M., & Mazzucchelli, C. 2024, A&A, 689, A128
2024
-
[164]
& Risaliti, G
Lusso, E. & Risaliti, G. 2016, ApJ, 819, 154
2016
-
[165]
2021, A&A, 646, A111
Lvminari, A., Nicastro, F., Elvis, M., et al. 2021, A&A, 646, A111
2021
-
[166]
2023, ApJ, 949, 22
Ma, Q., Wu, X.-B., Gu, H., Wen, Y ., & Fu, Y . 2023, ApJ, 949, 22
2023
-
[167]
E., Setton, D
Ma, Y ., Greene, J. E., Setton, D. J., et al. 2025, arXiv e-prints, arXiv:2504.08032
2025 arXiv
-
[168]
Madejski, G. G. & Sikora, M. 2016, ARA&A, 54, 725
2016
-
[169]
2025, MNRAS, 538, 1921
Maiolino, R., Risaliti, G., Signorini, M., et al. 2025, MNRAS, 538, 1921
2025
-
[170]
2007, ApJ, 668, 81
Malizia, A., Landi, R., Bassani, L., et al. 2007, ApJ, 668, 81
2007
-
[171]
K., Rakshit, S., Stalin, C
Mandal, A. K., Rakshit, S., Stalin, C. S., et al. 2021, MNRAS, 502, 2140
2021
-
[172]
J., Maiolino, R., et al
Marconi, A., Axon, D. J., Maiolino, R., et al. 2009, ApJ, 698, L103
2009
-
[173]
A., Perna, M., Willott, C
Marshall, M. A., Perna, M., Willott, C. J., et al. 2023, A&A, 678, A191
2023
-
[174]
2017, A&A, 608, A51
Martocchia, S., Piconcelli, E., Zappacosta, L., et al. 2017, A&A, 608, A51
2017
-
[175]
2021, Universe, 7, 484
Marziani, P., Berton, M., Panda, S., & Bon, E. 2021, Universe, 7, 484
2021
-
[176]
W., et al
Marziani, P., Dultzin, D., Sulentic, J. W., et al. 2018, Frontiers in Astronomy and Space Sciences, 5, 6
2018
-
[177]
2025, Universe, 11, 69
Marziani, P., Garnica Luna, K., Floris, A., et al. 2025, Universe, 11, 69
2025
-
[178]
W., Negrete, C
Marziani, P., Sulentic, J. W., Negrete, C. A., et al. 2014, The Astronomical Review, 9, 6
2014
-
[179]
W., Zwitter, T., Dultzin-Hacyan, D., & Calvani, M
Marziani, P., Sulentic, J. W., Zwitter, T., Dultzin-Hacyan, D., & Calvani, M. 2001, ApJ, 558, 553
2001
-
[180]
K., Sulentic, J
Marziani, P., Zamanov, R. K., Sulentic, J. W., & Calvani, M. 2003, MNRAS, 345, 1133
2003
-
[181]
2000, MNRAS, 314, L17
Mathur, S. 2000, MNRAS, 314, L17
2000
-
[182]
M., & Grupe, D
Mathur, S., Fields, D., Peterson, B. M., & Grupe, D. 2012, ApJ, 754, 146
2012
-
[183]
2001, New A, 6, 321
Mathur, S., Kuraszkiewicz, J., & Czerny, B. 2001, New A, 6, 321
2001
-
[184]
C., & Piro, L
Matt, G., Perola, G. C., & Piro, L. 1991, A&A, 247, 25
1991
-
[185]
P., Brammer, G., et al
Matthee, J., Naidu, R. P., Brammer, G., et al. 2024, ApJ, 963, 129
2024
-
[186]
A., Nardini, E., Parker, M
Matzeu, G. A., Nardini, E., Parker, M. L., et al. 2020, Monthly Notices of the Royal Astronomical Society, 497, 2352
2020
-
[187]
2024, arXiv e-prints, arXiv:2408.15615
Mazzolari, G., Scholtz, J., Maiolino, R., et al. 2024, arXiv e-prints, arXiv:2408.15615
2024
-
[188]
2025, A&A, 700, A12
Mazzolari, G., Scholtz, J., Maiolino, R., et al. 2025, A&A, 700, A12
2025
-
[189]
2023, A&A, 676, A71
Mazzucchelli, C., Bischetti, M., D’Odorico, V ., et al. 2023, A&A, 676, A71
2023
-
[190]
2025, A&A, 694, A171
Mazzucchelli, C., Decarli, R., Belladitta, S., et al. 2025, A&A, 694, A171
2025
-
[191]
M., Koerding, E., Knigge, C., Uttley, P., & Fender, R
McHardy, I. M., Koerding, E., Knigge, C., Uttley, P., & Fender, R. P. 2006, Nature, 444, 730
2006
-
[192]
M., Papadakis, I
McHardy, I. M., Papadakis, I. E., Uttley, P., Page, M. J., & Mason, K. O. 2004, MNRAS, 348, 783
2004
-
[193]
T., Werner, N., Simionescu, A., & Allen, S
Million, E. T., Werner, N., Simionescu, A., & Allen, S. W. 2011, MNRAS, 418, 2744
2011
-
[194]
C., & Knudsen, K
Molina, J., Ho, L. C., & Knudsen, K. K. 2024, A&A, 691, A114
2024
-
[195]
R., Alexander, D
Mullaney, J. R., Alexander, D. M., Fine, S., et al. 2013, MNRAS, 433, 622
2013
-
[196]
P., Matthee, J., Katz, H., et al
Naidu, R. P., Matthee, J., Katz, H., et al. 2025, arXiv e-prints, arXiv:2503.16596
2025 arXiv
-
[197]
C., Uzdensky, D
Nalewajko, K., Giannios, D., Begelman, M. C., Uzdensky, D. A., & Sikora, M. 2011, MNRAS, 413, 333
2011
-
[198]
Nanni, R., Vignali, C., Gilli, R., Moretti, A., & Brandt, W. N. 2017, A&A, 603, A128
2017
-
[199]
2025, ApJ, 989, 75
Napolitano, L., Castellano, M., Pentericci, L., et al. 2025, ApJ, 989, 75
2025
-
[200]
N., Gofford, J., et al
Nardini, E., Reeves, J. N., Gofford, J., et al. 2015, Science, 347, 860
2015
-
[201]
P., et al
Neeleman, M., Novak, M., Venemans, B. P., et al. 2021, ApJ, 911, 141
2021
-
[202]
P., Walter, F., et al
Novak, M., Venemans, B. P., Walter, F., et al. 2020, ApJ, 904, 131 O’Dea, C. P. 1998, PASP, 110, 493 O’Dea, C. P. & Saikia, D. J. 2021, A&A Rev., 29, 3
2020
-
[203]
2007, ApJS, 169, 1
Ohta, K., Aoki, K., Kawaguchi, T., & Kiuchi, G. 2007, ApJS, 169, 1
2007
-
[204]
2024, MNRAS, 529, L108
Ojha, V ., Singh, V ., Berton, M., & J¨arvel¨a, E. 2024, MNRAS, 529, L108
2024
-
[205]
L., Brotherton, M
Oknyansky, V . L., Brotherton, M. S., Tsygankov, S. S., et al. 2023, MNRAS, 525, 2571 Olgu´ın-Iglesias, A., Kotilainen, J., & Chavushyan, V . 2020, MNRAS, 492, 1450 Olgu´ın-Iglesias, A., Kotilainen, J. K., Le´on Tavares, J., Chavushyan, V ., & A˜norve, C. 2017, MNRAS, 467, 3712
2023
-
[206]
D., et al
Onoue, M., Ding, X., Silverman, J. D., et al. 2025, Nature Astronomy [2409.07113] Orban de Xivry, G., Davies, R., Schartmann, M., et al. 2011, MNRAS, 417, 2721
2025 arXiv
-
[207]
2016, Astronomische Nachrichten, 337, 9
Orienti, M. 2016, Astronomische Nachrichten, 337, 9
2016
-
[208]
Oshlack, A. Y . K. N., Webster, R. L., & Whiting, M. T. 2001, ApJ, 558, 578
2001
-
[209]
Osterbrock, D. E. & Pogge, R. W. 1985, ApJ, 297, 166
1985
-
[210]
P., Taniguchi, Y ., et al
Ota, K., Venemans, B. P., Taniguchi, Y ., et al. 2018, ApJ, 856, 109
2018
-
[211]
2023, ApJ, 957, L3
Pacucci, F., Nguyen, B., Carniani, S., Maiolino, R., & Fan, X. 2023, ApJ, 957, L3
2023
-
[212]
2017, Nature Astronomy, 1, 0194
Padovani, P. 2017, Nature Astronomy, 1, 0194
2017
-
[213]
2019, ApJ, 871, 162
Paiano, S., Falomo, R., Treves, A., Franceschini, A., & Scarpa, R. 2019, ApJ, 871, 162
2019
-
[214]
Paliya, V . S. 2019, Journal of Astrophysics and Astronomy, 40, 39
2019
-
[215]
S., Ajello, M., Rakshit, S., et al
Paliya, V . S., Ajello, M., Rakshit, S., et al. 2018, ApJ, 853, L2
2018
-
[216]
S., Parker, M
Paliya, V . S., Parker, M. L., Jiang, J., et al. 2019, ApJ, 872, 169
2019
-
[217]
S., Stalin, C
Paliya, V . S., Stalin, C. S., Dom´ınguez, A., & Saikia, D. J. 2024, MNRAS, 527, 7055
2024
-
[218]
S., Stalin, C
Paliya, V . S., Stalin, C. S., Shukla, A., & Sahayanathan, S. 2013, ApJ, 768, 52
2013
-
[219]
& Marziani, P
Panda, S. & Marziani, P. 2023, Frontiers in Astronomy and Space Sciences, 10, 1130103
2023
-
[220]
2019, ApJ, 882, 79
Panda, S., Marziani, P., & Czerny, B. 2019, ApJ, 882, 79
2019
-
[221]
2021, in Nuclear Activity in Galaxies Across Cosmic Time, ed
Panda, S., Marziani, P., & Czerny, B. 2021, in Nuclear Activity in Galaxies Across Cosmic Time, ed. M. Povi´c, P. Marziani, J. Masegosa, H. Netzer, S. H. Negu, & S. B. Tessema, V ol. 356, 77–81
2021
-
[222]
Peacock, J. A. & Wall, J. V . 1982, MNRAS, 198, 843 P´erez-Gonz´alez, P. G., Barro, G., Rieke, G. H., et al. 2024, ApJ, 968, 4
1982
-
[223]
Peterson, B. M. 1993, PASP, 105, 247
1993
-
[224]
Peterson, B. M. 2011, in Narrow-Line Seyfert 1 Galaxies and their Place in the Universe, 32
2011
-
[225]
M., Ferrarese, L., Gilbert, K
Peterson, B. M., Ferrarese, L., Gilbert, K. M., et al. 2004, ApJ, 613, 682
2004
-
[226]
2005, A&A, 432, 15
Piconcelli, E., Jimenez-Bail´on, E., Guainazzi, M., et al. 2005, A&A, 432, 15
2005
-
[227]
2017, Astronomische Nachrichten, 338, 234 Planck Collaboration, Ade, P
Pinto, C., Fabian, A., Middleton, M., & Walton, D. 2017, Astronomische Nachrichten, 338, 234 Planck Collaboration, Ade, P. A. R., Aghanim, N., et al. 2016, A&A, 594, A26
2017
-
[228]
Pogge, R. W. 2011, in Narrow-Line Seyfert 1 Galaxies and their Place in the Universe, 2
2011
-
[229]
2012, A&A, 542, A83 Popovi´c, L
Ponti, G., Papadakis, I., Bianchi, S., et al. 2012, A&A, 542, A83 Popovi´c, L. ˇC., Mediavilla, E., Bon, E., & Ili´c, D. 2004, A&A, 423, 909
2012
-
[230]
A., Done, C., & Osborne, J
Pounds, K. A., Done, C., & Osborne, J. P. 1995, MNRAS, 277, L5
1995
-
[231]
& Ghisellini, G
Prandini, E. & Ghisellini, G. 2022, Galaxies, 10, 35
2022
-
[232]
S., Chand, H., & Zhang, X.-G
Rakshit, S., Stalin, C. S., Chand, H., & Zhang, X.-G. 2017, ApJS, 229, 39
2017
-
[233]
& Woo, J.-H
Rakshit, S. & Woo, J.-H. 2018, ApJ, 865, 5
2018
-
[234]
N., Braito, V ., Nardini, E., et al
Reeves, J. N., Braito, V ., Nardini, E., et al. 2018, ApJ, 854, L8
2018
-
[235]
2020, ApJ, 898, L1
Ricci, C., Kara, E., Loewenstein, M., et al. 2020, ApJ, 898, L1
2020
-
[236]
J., et al
Ricci, C., Trakhtenbrot, B., Koss, M. J., et al. 2017, ApJS, 233, 17
2017
-
[237]
Richards, J. L. & Lister, M. L. 2015, ApJ, 800, L8
2015
-
[238]
2023, A&A, 673, A85
Romano, P., L¨ahteenm¨aki, A., Vercellone, S., et al. 2023, A&A, 673, A85
2023
-
[239]
2018, MNRAS, 481, 5046
Romano, P., Vercellone, S., Foschini, L., et al. 2018, MNRAS, 481, 5046
2018
-
[240]
2025, A&A, 698, A160
Rosa, V ., Foschini, L., & Ciroi, S. 2025, A&A, 698, A160
2025
-
[241]
P., et al
Rusakov, V ., Watson, D., Nikopoulos, G. P., et al. 2025, arXiv e-prints, arXiv:2503.16595 Salom´e, Q., Krongold, Y ., Longinotti, A. L., et al. 2023, MNRAS, 524, 3130 Salom´e, Q., Longinotti, A. L., Krongold, Y ., et al. 2021, MNRAS, 501, 219
2025
-
[242]
2010, MNRAS, 403, 1246
Sani, E., Lutz, D., Risaliti, G., et al. 2010, MNRAS, 403, 1246
2010
-
[243]
2025, A&A, 697, A175
Scholtz, J., Maiolino, R., D’Eugenio, F., et al. 2025, A&A, 697, A175
2025
-
[244]
2016, A&A, 588, A146
Schulz, R., Kreikenbohm, A., Kadler, M., et al. 2016, A&A, 588, A146
2016
-
[245]
ˇC., Uklein, R., et al
Shablovinskaya, E., Popovi´c, L. ˇC., Uklein, R., et al. 2023, Universe, 9, 52
2023
-
[246]
Shakura, N. I. & Sunyaev, R. A. 1973, A&A, 24, 337
1973
-
[247]
G., Stevens, J., et al
Shao, X., Edwards, P. G., Stevens, J., et al. 2025, MNRAS, 536, 1344
2025
-
[248]
I., Popovi´c, L
Shapovalova, A. I., Popovi´c, L. ˇC., Burenkov, A. N., et al. 2012, ApJS, 202, 10
2012
-
[249]
Shen, Y . & Ho, L. C. 2014, Nature, 513, 210
2014
-
[250]
M., Laurent-Muehleisen, S
Siebert, J., Leighly, K. M., Laurent-Muehleisen, S. A., et al. 1999, A&A, 348, 678
1999
-
[251]
Sigut, T. A. A. & Pradhan, A. K. 1998, ApJ, 499, L139
1998
-
[252]
A., et al
Smirnova-Pinchukova, I., Husemann, B., Davis, T. A., et al. 2022, A&A, 659, A125
2022
-
[253]
S., Champagne, J
Spilker, J. S., Champagne, J. B., Fan, X., et al. 2025, ApJ, 982, 72
2025
-
[254]
A., Lyu, J., Rieke, G
Stone, M. A., Lyu, J., Rieke, G. H., & Alberts, S. 2023, ApJ, 953, 180
2023
-
[255]
A., Lyu, J., Rieke, G
Stone, M. A., Lyu, J., Rieke, G. H., Alberts, S., & Hainline, K. N. 2024, ApJ, 964, 90
2024
-
[256]
& Marziani, P
Sulentic, J. & Marziani, P. 2015, Frontiers in Astronomy and Space Sciences, 2, 6
2015
-
[257]
W., Bachev, R., Marziani, P., Negrete, C
Sulentic, J. W., Bachev, R., Marziani, P., Negrete, C. A., & Dultzin, D. 2007, ApJ, 666, 757
2007
-
[258]
W., Marziani, P., Zamanov, R., et al
Sulentic, J. W., Marziani, P., Zamanov, R., et al. 2002, ApJ, 566, L71
2002
-
[259]
W., Zwitter, T., Marziani, P., & Dultzin-Hacyan, D
Sulentic, J. W., Zwitter, T., Marziani, P., & Dultzin-Hacyan, D. 2000, ApJ, 536, L5
2000
-
[260]
Sunyaev, R. A. & Titarchuk, L. G. 1980, A&A, 500, 167
1980
-
[261]
2023, ApJ, 952, 47
Takamura, M., Hada, K., Honma, M., et al. 2023, ApJ, 952, 47
2023
-
[262]
N., et al
Tombesi, F., Cappi, M., Reeves, J. N., et al. 2013, MNRAS, 430, 1102
2013
-
[263]
M., Reeves, J
Tombesi, F., Sambruna, R. M., Reeves, J. N., et al. 2010, ApJ, 719, 700
2010
-
[264]
2022, MNRAS, 509, 3599
Tortosa, A., Ricci, C., Tombesi, F., et al. 2022, MNRAS, 509, 3599
2022
-
[265]
2024, A&A, 691, A235
Tortosa, A., Zappacosta, L., Piconcelli, E., et al. 2024, A&A, 691, A235
2024
-
[266]
S., Antonucci, R
Ulvestad, J. S., Antonucci, R. R. J., & Goodrich, R. W. 1995, AJ, 109, 81
1995
-
[267]
& McHardy, I
Uttley, P. & McHardy, I. M. 2005, MNRAS, 363, 586
2005
-
[268]
2023, A&A, 679, A32
Varglund, I., J¨arvel¨a, E., Ciroi, S., et al. 2023, A&A, 679, A32
2023
-
[269]
2022, A&A, 668, A91
Varglund, I., J¨arvel¨a, E., L¨ahteenm¨aki, A., et al. 2022, A&A, 668, A91
2022
-
[270]
1999, Monthly Notices of the Royal Astronomical Society, 309, 113
Vaughan, S., Reeves, J., Warwick, R., & Edelson, R. 1999, Monthly Notices of the Royal Astronomical Society, 309, 113
1999
-
[271]
2021, A&A, 648, A17
Venturi, G., Cresci, G., Marconi, A., et al. 2021, A&A, 648, A17
2021
-
[272]
M., Verner, D
Verner, E. M., Verner, D. A., Korista, K. T., et al. 1999, ApJS, 120, 101
1999
-
[273]
2024, A&A, 689, A123
Vietri, A., Berton, M., J¨arvel¨a, E., et al. 2024, A&A, 689, A123
2024
-
[274]
2022, A&A, 662, A20 17
Vietri, A., J¨arvel¨a, E., Berton, M., et al. 2022, A&A, 662, A20 17
2022
-
[275]
2015, in Demographics and Environment of AGN from Multi-Wavelength Surveys, ed
Vignali, C., Iwasawa, K., Comastri, A., et al. 2015, in Demographics and Environment of AGN from Multi-Wavelength Surveys, ed. I. Georgantopoulos, 108
2015
-
[276]
S., Rakshit, S., et al
Viswanath, G., Stalin, C. S., Rakshit, S., et al. 2019, ApJ, 881, L24
2019
-
[277]
N., Bauer, F
Vito, F., Brandt, W. N., Bauer, F. E., et al. 2019, A&A, 630, A118
2019
-
[278]
N., Yang, G., et al
Vito, F., Brandt, W. N., Yang, G., et al. 2018, MNRAS, 473, 2378 V olonteri, M., Habouzit, M., & Colpi, M. 2021, Nature Reviews Physics, 3, 732
2018
-
[279]
I., et al
Wang, A., An, T., Kellermann, K. I., et al. 2025, arXiv e-prints, arXiv:2506.03970
2025 arXiv
-
[280]
2016, ApJ, 824, 149
Wang, F., Du, P., Hu, C., et al. 2016, ApJ, 824, 149
2016
-
[281]
2021, ApJ, 907, L1
Wang, F., Yang, J., Fan, X., et al. 2021, ApJ, 907, L1
2021
-
[282]
1996, A&A, 309, 81
Wang, T., Brinkmann, W., & Bergeron, J. 1996, A&A, 309, 81
1996
-
[283]
Weymann, R. J. 1970, ApJ, 160, 31
1970
-
[284]
J., Bergeron, J., & Omont, A
Willott, C. J., Bergeron, J., & Omont, A. 2017, ApJ, 850, 108
2017
-
[285]
A., et al
Winkel, N., Husemann, B., Davis, T. A., et al. 2022, A&A, 663, A104
2022
-
[286]
2023, A&A, 670, A3
Winkel, N., Husemann, B., Singha, M., et al. 2023, A&A, 670, A3
2023
-
[287]
2016, ApJ, 817, 108
Woo, J.-H., Bae, H.-J., Son, D., & Karouzos, M. 2016, ApJ, 817, 108
2016
-
[288]
2023, ApJ, 951, L5
Yang, J., Wang, F., Fan, X., et al. 2023, ApJ, 951, L5
2023
-
[289]
2020, ApJ, 897, L14
Yang, J., Wang, F., Fan, X., et al. 2020, ApJ, 897, L14
2020
-
[290]
& Komossa, S
Yao, S. & Komossa, S. 2021, MNRAS, 501, 1384
2021
-
[291]
& Komossa, S
Yao, S. & Komossa, S. 2023, MNRAS, 523, 441
2023
-
[292]
2019, MNRAS, 487, L40
Yao, S., Komossa, S., Liu, W.-J., et al. 2019, MNRAS, 487, L40
2019
-
[293]
2015, MNRAS, 454, L16
Yao, S., Yuan, W., Zhou, H., et al. 2015, MNRAS, 454, L16
2015
-
[294]
G., Adelman, J., Anderson, Jr., J
York, D. G., Adelman, J., Anderson, Jr., J. E., et al. 2000, AJ, 120, 1579
2000
-
[295]
M., Peterson, B
Yuan, W., Macri, L. M., Peterson, B. M., et al. 2021, ApJ, 913, 3
2021
-
[296]
Y ., Komossa, S., et al
Yuan, W., Zhou, H. Y ., Komossa, S., et al. 2008, ApJ, 685, 801
2008
-
[297]
A., et al
Yue, M., Eilers, A.-C., Simcoe, R. A., et al. 2024, ApJ, 966, 176
2024
-
[298]
2023, A&A, 678, A201
Zappacosta, L., Piconcelli, E., Fiore, F., et al. 2023, A&A, 678, A201
2023
-
[299]
2006, ApJS, 166, 128
Zhou, H., Wang, T., Yuan, W., et al. 2006, ApJS, 166, 128
2006
-
[300]
& Wang, T.-G
Zhou, H.-Y . & Wang, T.-G. 2002, Ch.J. A&A, 2, 501
2002
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