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REVIEW 2 major objections 5 minor 100 references

Supermassive black holes and their surroundings: MeV signatures

T0 review · 2 major / 5 minor · reviewed 2026-08-06 · deepseek-v4-flash

Pith's one-line read The MeV band is the diagnostic window for what happens around supermassive black holes, and a factor-of-five flux gap below 50 MeV can separate leptonic from hadronic Fermi-bubble models.

desk verdict A competent, readable review of the MeV science case whose one quantitative prediction is fragile in exactly the way the paper itself admits; judge it as a review, not a research claim. read the letter →

arxiv 2507.01088 v1 pith:CJ2HWZWA submitted 2025-07-01 astro-ph.HE astro-ph.CO

classification astro-ph.HEastro-ph.CO
keywords supermassiveblackholesMeVgamma-rayastronomyFermibubblesactivegalacticnucleirelativisticjetshadronicandleptonicemissionhigh-energyneutrinoscosmicX-raybackground
verification ladder T0 review T1 audit T2 compute T3 formal

The pith

A machine-rendered reading of the paper's core claim, the machinery that carries it, and where it could break.

The reading

This review sets out to establish that the poorly explored MeV band, roughly 1–100 MeV, is the decisive window for learning what particles and processes surround supermassive black holes, from the quiet Galactic Centre to the most powerful high-redshift jets. Its most concrete quantitative target is at the base of the Fermi bubbles, where the authors compute that the gamma-ray flux from a leptonic model should exceed that from a hadronic model by a factor of about 5 for $E \lesssim 50$ MeV. Because the next generation of MeV instruments should be sensitive enough to see that difference, a single measurement could discriminate between models of the bubbles' origin. The same window is argued to carry the signatures of non-thermal coronal electrons, of neutrino production in AGN coronae and jets, and of jet composition through polarization and variability.

What carries the argument

The load-bearing object is the comparison of cooling and escape timescales for electrons at the base of the Fermi bubbles ($|b|<10^\circ$). The authors take advective escape at an outflow velocity of 1000 km/s to be the dominant energy-loss channel below about 100 GeV for secondary pairs produced in hadronic interactions; this suppresses the secondary inverse-Compton component at tens of MeV and creates the predicted factor-of-5 gap relative to the leptonic scenario. Across the rest of the review the recurring discriminators are the position of the inverse-Compton peak in the MeV band, the degree of gamma-ray polarization (high for hadronic synchrotron, low for leptonic inverse Compton), and the MeV emission expected from neutrino-producing hadronic interactions in coronae and jets.

What would settle it

Take a next-generation MeV telescope with e-ASTROGAM-, AMEGO-X-, or COSI-class sensitivity, point it at the low-latitude Fermi bubble region ($|b|<10^\circ$), and measure the surface brightness spectrum between about 1 and 50 MeV. If the flux matches the leptonic prediction, a factor of roughly 5 above the hadronic curve, the purely hadronic scenario is excluded; if it matches the hadronic curve, the leptonic scenario is excluded; if the two curves cannot be separated, the assumed 1000 km/s outflow is too fast or the models are degenerate.

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Extended reading notes

Core claim

On its own terms the paper's discovery is that the MeV band is a diagnostic, not a gap: each SMBH environment considered places identifiable emission signatures between roughly 1 and several hundred MeV. The central claim is the factor-of-5 separation at the base of the Fermi bubbles, where the hadronic model's primary pion-decay component cuts off below about 100 MeV and its secondary electrons are removed by advective escape, so a leptonic, inverse-Compton-dominated scenario outshines the hadronic one at tens of MeV. The authors conclude that future instruments such as e-ASTROGAM and AMEGO-X should detect the difference and thereby tie the bubbles to either the quasi-stationary, hadron-dominated 'mini-burst' picture or to an outflow/starburst leptonic picture. Around this quantitative core, the review assembles the supporting case: AGN coronae must transition from thermal to non-thermal somewhere in the sub-MeV band, neutrino-emitting AGN should be brightest in MeV gamma rays after coronal absorption, hadronic jet models predict high MeV polarization while leptonic inverse-Compton models predict little, and the redshift distributions of BAT- and LAT-detected blazars suggest two distinct evolutionary channels that MeV surveys can test.

Load-bearing premise

The factor-of-five separation depends on the assumed outflow speed of about 1000 km/s carrying secondary electrons away from the base of the Fermi bubbles; if the real outflow is much slower, the secondary inverse-Compton emission rises to the level of the leptonic signal and the two models become indistinguishable.

Editorial extensions

If this is right

  • A next-generation MeV observation of the low-latitude Fermi bubbles should reveal whether the emission is leptonic or hadronic, tying the bubbles to either starburst/wind or AGN-outflow/mini-burst origins.
  • For neutrino-emitting AGN such as NGC 1068, MeV observations probe the coronal region where gamma rays are absorbed and reprocessed, constraining the distance of the emission region from the black hole.
  • MeV polarimetry of bright blazars can separate hadronic jet models, which predict strong polarization from synchrotron radiation by protons or cascade pairs, from leptonic inverse-Compton models, which predict weak polarization.
  • A sensitive MeV survey of blazars will test whether the BAT-detected population peaking near $z \sim 4.3$ and the LAT-detected population peaking near $z \sim 1.6$ are two distinct evolutionary channels or an artifact of sensitivity.
  • MeV observations of the highest-redshift blazars can distinguish bent-jet X-rays from inverse-Compton scattering of the cosmic microwave background.

Reading between the lines

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

  • Beyond the paper: the same escape-timescale logic implies a testable asymmetry — a future measurement that finds the bright leptonic prediction missing would disfavour simple one-zone leptonic models, not just hadronic ones.
  • Beyond the paper: the framework transfers to the eROSITA bubbles and to starburst-driven outflows in other galaxies, where outflow velocities can be measured independently from X-ray line kinematics, sharpening the predicted separation.
  • Beyond the paper: the polarization argument implies that even a null MeV-polarization result on a few luminous FSRQs would constrain the coherence scale of the jet magnetic field, because hadronic models need ordered fields to produce their high polarization.
  • Beyond the paper: the neutrino–MeV link suggests that MeV catalogs could serve as targeting lists for neutrino follow-up, since every neutrino-bright AGN should show a characteristic MeV counterpart.
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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

2 major / 5 minor

Summary. The paper argues that the MeV energy range (roughly 1 to several hundred MeV) is a uniquely informative but historically under-explored window for studying the environments of supermassive black holes. It reviews four areas: the leptonic versus hadronic origin of the Fermi bubbles near the Galactic center; the X-ray corona, non-thermal tails, and the neutrino connection in AGN such as NGC 1068; the role of MeV observations for MeV blazars and high-redshift jets; and multimessenger/diagnostic tools including neutrinos and polarization. The most concrete quantitative result is in §2.1, where an illustrative model of the low-latitude Fermi bubbles predicts that the gamma-ray flux in the leptonic scenario is a factor of 5 larger than in the hadronic scenario for E ≲ 50 MeV, a difference that the authors argue would be detectable by next-generation MeV instruments such as e-ASTROGAM and AMEGO-X. The broader thesis is that MeV observations are central to answering open questions about particle composition, emission processes, and jet physics around SMBHs.

Significance. If the programmatic claims are accepted, the paper provides a useful and timely synthesis of open problems in SMBH astrophysics that a future MeV mission could address. Its strengths are the explicit, falsifiable predictions: the factor-5 Fermi-bubble flux separation (Fig. 1), the reprocessed MeV emission expected from neutrino-emitting coronae like NGC 1068, the X-ray/MeV discrimination for high-redshift blazars, and the polarization signatures separating hadronic and leptonic jet models. The paper is generally well grounded in the cited literature, and the Fermi-bubble model in §2.1 is internally consistent, with cooling and escape timescales presented in Fig. 2. The main significance is programmatic rather than discovery-oriented, but the concrete predictions give the review substantial utility for mission design and follow-up observations. However, the quantitative anchor of the Fermi-bubble discussion is sensitive to an assumed outflow velocity, and the manuscript itself flags this limitation; this weakens but does not destroy the central message that the MeV band is key to SMBH physics.

major comments (2)
  1. [§2.1, Fig. 1] The factor-5 leptonic/hadronic separation at E ≲ 50 MeV depends critically on the assumed advective escape velocity of 1000 km/s at the Fermi-bubble base. The manuscript itself states that for much lower escape velocities, for example velocities comparable to the sound speed in the ionized hydrogen plasma above the Galactic center, the secondary IC production at tens of MeV becomes comparable to the leptonic IC emission, which would erase the predicted discrimination. Since outflow speeds of order 10–100 km/s are plausible for the quasi-stationary and mini-burst scenarios that the hadronic model is meant to represent, the claimed factor-5 and the associated detectability statement are conditional on a single unverified parameter. Please either justify the 1000 km/s value at the bubble base with more direct observational or physical arguments, provide a parameter scan showing how the factor-5 varies with outflow velocity and other escape parameters, or explicitly recharacterize this result as an illustrative scenario rather than a robust quantitative prediction.
  2. [§2.1] The hadronic and leptonic model parameters are fitted to the same Fermi-LAT data points used to project the MeV fluxes, and the MeV extrapolation depends on the assumed CR spectral indices and cutoffs, gas density, diffusion coefficient, and radiation fields in addition to the outflow velocity. The manuscript lists these assumptions but does not quantify their impact on the factor-5 prediction. In particular, the paper does not explore whether alternative but plausible values of the CRp index/cutoff or the diffusion coefficient could bring the hadronic and leptonic predictions closer together at tens of MeV. Please state explicitly which parameters are constrained by the Fermi-LAT data and which are assumed, and report the sensitivity of the factor-5 to the dominant parameters, or clearly label the calculation as a proof-of-concept rather than a model fit with predictive power.
minor comments (5)
  1. [References] The in-text citation "Ackermann et al. 2017b" in §2.1 has no matching entry in the reference list; the list contains an unlabeled 2017 Ackermann et al. paper on the Galactic center GeV excess. Please correct the citation or add the intended reference.
  2. [Fig. 2 caption] The caption states "Synchrotron, B=5.0 G", but the text and astrophysical context indicate the magnetic field should be 5.0 μG. Please fix the unit in the figure caption.
  3. [Abstract] The abstract contains a grammatical error: "Investigating this phenomena" should be "Investigating these phenomena".
  4. [§4 Summary] The summary contains a duplicated word: "lower-counterparts counterparts" should read "lower-redshift counterparts" or similar.
  5. [Fig. 1 caption] The caption uses the notation "|b| < 10" without a degree symbol and without defining b; please write "|b| < 10°" and define b as Galactic latitude.

Circularity Check

0 steps flagged · score 0.0 of 10

No circularity: the Fermi-bubble MeV flux difference is an extrapolation from fits to Fermi-LAT data, not a re-statement of an input; self-citations are non-load-bearing, and the escape-velocity caveat is an acknowledged sensitivity, not a circular step.

full rationale

The paper is a review/prospectus rather than a closed derivation, and its one concrete quantitative result, the factor-of-five leptonic/hadronic separation at E < 50 MeV in the low-latitude Fermi bubbles, is a genuine model extrapolation. The hadronic and leptonic models in Sec. 2.1 are normalized to the same Fermi-LAT spectral points at |b| < 10 deg, and the predicted MeV difference lies below the fitted energy band, so it is not a re-statement of the input spectrum. The dependence on the 1000 km/s advective escape velocity is explicitly acknowledged by the authors ('For much lower escape velocities than 1000 km/s... the secondary IC production at tens of MeV would be at a comparable level'), which is a parameter-sensitivity caveat, not circularity. The self-citations (e.g., Herold & Malyshev 2019, Ajello et al. 2023, Sbarrato et al. 2022, Buson et al. 2022/2023, Marcotulli et al. 2022) are used to point to externally supported data and models, not as uniqueness theorems or as the sole justification for a forced conclusion. No equation in the paper reduces by construction to its own input, and no fitted parameter is renamed as a prediction.

Assumptions & free parameters 5 free parameters · 3 assumptions · 0 invented entities

The quantitative Fermi bubble predictions in §2.1 depend on several fitted or assumed parameters. These do not affect the paper's programmatic argument, but they make the factor-5 prediction illustrative rather than robust.

free parameters (5)
  • CRp spectral index and cutoff at Fermi bubble base = Not specified in text (figure only)
    Fitted to the Fermi-LAT spectral points at the bubble base in §2.1 to produce the hadronic model.
  • CRE spectral index and cutoff for leptonic model = Not specified in text (figure only)
    Fitted to the same Fermi-LAT data in §2.1 to produce the leptonic model.
  • Outflow velocity = 1000 km/s
    Chosen, not fitted; used in §2.1 to compute advective escape timescales. The factor-5 prediction is sensitive to this value.
  • Gas density at bubble base = 0.1 cm^-3
    Assumed from Ferrière et al. 2007, used in the hadronic gamma-ray calculation in §2.1.
  • Diffusion coefficient = D = 3e28 (E/1 TeV)^0.3 cm2/s
    Assumed similar to the local interstellar value (Vladimirov et al. 2012), used for diffusive escape in §2.1.
assumptions (3)
  • domain assumption The Fermi bubble base gamma-ray emission is produced by cosmic-ray interactions (hadronic pp and leptonic IC/bremsstrahlung).
    The entire model comparison in §2.1 assumes these production mechanisms and does not consider alternatives such as dark matter annihilation.
  • domain assumption The diffusion coefficient in the Fermi bubble base region is similar to the local interstellar medium value.
    Invoked in §2.1 and Figure 2 for diffusive escape timescales; a different coefficient would change the secondary fluxes and the predicted MeV separation.
  • domain assumption The interstellar radiation field model of Porter et al. (2017) is valid for the Galactic Center region.
    Used for IC losses of secondary electrons in §2.1; inaccurate radiation fields would alter the MeV predictions.

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Cite this review

Pith. "Pith review of Supermassive black holes and their surroundings: MeV signatures." pith.science (2026). https://pith.science/paper/CJ2HWZWA

@misc{pith2026250701088,
  author       = {Pith},
  title        = {Pith review of: Supermassive black holes and their surroundings: MeV signatures},
  year         = {2026},
  howpublished = {\url{https://pith.science/paper/CJ2HWZWA}},
  note         = {Machine review of arXiv:2507.01088}
}
read the original abstract

The gravitational potential of supermassive black holes is so powerful that it triggers some of the most intense phenomena in the Universe. Accretion onto these objects and relativistic jet emission from their vicinity are observable across a wide range of frequencies and throughout cosmic history. However, despite this wealth of data, many aspects of their underlying mechanisms remain elusive. Investigating this phenomena across all frequencies is crucial, yet some energy windows are still poorly explored. One such window is the MeV energy range: many key signatures related to the emission from the SMBH environment - both in quiescent and active phases - are expected to lie between one and several hundreds MeV. In this work, we explore some of the open questions regarding the behavior and emission processes in the surroundings of SMBHs, and how these questions might be approached. From the elusive nature of Fermi bubbles around our Galactic Centre, to the origin of high-energy neutrinos in the nuclei and jets of Active Galactic Nuclei, to the nature and emission mechanisms of the most powerful blazars, the MeV window stands out as a crucial key to understanding SMBH physics.

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Works this paper leans on

100 extracted references · 33 canonical work pages

  1. [1]

    , Ackermann , M

    barticle Abdo , A.A. , Ackermann , M. , Ajello , M. , : The First Catalog of Active Galactic Nuclei Detected by the Fermi Large Area Telescope . 715 ( 1 ), 429 -- 457 ( 2010 ) 10.1088/0004-637X/715/1/429 https://arxiv.org/abs/1002.0150 arXiv:1002.0150 [astro-ph.HE] barticle

  2. [2]

    , Albert , A

    barticle Ackermann , M. , Albert , A. , Atwood , W.B. , : The Spectrum and Morphology of the Fermi Bubbles . 793 ( 1 ), 64 ( 2014 ) 10.1088/0004-637X/793/1/64 https://arxiv.org/abs/1407.7905 arXiv:1407.7905 [astro-ph.HE] barticle

  3. [3]

    , Ajello , M

    barticle Ackermann , M. , Ajello , M. , Albert , A. , : The Spectrum of Isotropic Diffuse Gamma-Ray Emission between 100 MeV and 820 GeV . 799 ( 1 ), 86 ( 2015 ) 10.1088/0004-637X/799/1/86 https://arxiv.org/abs/1410.3696 arXiv:1410.3696 [astro-ph.HE] barticle

  4. [4]

    , Abraham , K

    barticle Aartsen , M.G. , Abraham , K. , Ackermann , M. , : All-sky Search for Time-integrated Neutrino Emission from Astrophysical Sources with 7 yr of IceCube Data . 835 ( 2 ), 151 ( 2017 ) 10.3847/1538-4357/835/2/151 https://arxiv.org/abs/1609.04981 arXiv:1609.04981 [astro-ph.HE] barticle

  5. [5]

    , Ajello , M

    barticle Ackermann , M. , Ajello , M. , Albert , A. , : The Fermi Galactic Center GeV Excess and Implications for Dark Matter . 840 ( 1 ), 43 ( 2017 ) 10.3847/1538-4357/aa6cab https://arxiv.org/abs/1704.03910 arXiv:1704.03910 [astro-ph.HE] barticle

  6. [6]

    , Buson , S

    bchapter Azzollini , A. , Buson , S. , Coleiro , A. , Fichet de Clairfontaine , G. , Pfeiffer , L. , Sanchez Zaballa , J.M. , Boughelilba , M. , Lincetto , M. : The physical properties of candidate neutrino-emitter blazars . In: European Physical Journal Web of Conferences . European Physical Journal Web of Conferences , vol. 319 , p. 06005 . EDP , ??? ( ...

  7. [7]

    , Costamante , L

    barticle Ajello , M. , Costamante , L. , Sambruna , R.M. , other : The Evolution of Swift/BAT Blazars and the Origin of the MeV Background . 699 ( 1 ), 603 -- 625 ( 2009 ) 10.1088/0004-637X/699/1/603 https://arxiv.org/abs/0905.0472 arXiv:0905.0472 [astro-ph.CO] barticle

  8. [8]

    , Murase , K

    barticle Ajello , M. , Murase , K. , McDaniel , A. : Disentangling the Hadronic Components in NGC 1068 . 954 ( 2 ), 49 ( 2023 ) 10.3847/2041-8213/acf296 https://arxiv.org/abs/2307.02333 arXiv:2307.02333 [astro-ph.HE] barticle

Show all 100 references
  1. [9]

    , Brown , R.L

    barticle Balick , B. , Brown , R.L. : Intense sub-arcsecond structure in the galactic center. 194 , 265 -- 270 ( 1974 ) 10.1086/153242 barticle

  2. [10]

    , Fox , A.J

    barticle Bordoloi , R. , Fox , A.J. , Lockman , F.J. , Wakker , B.P. , Jenkins , E.B. , Savage , B.D. , Hernandez , S. , Tumlinson , J. , Bland-Hawthorn , J. , Kim , T.-S. : Mapping the Nuclear Outflow of the Milky Way: Studying the Kinematics and Spatial Extent of the Norther...

  3. [11]

    , Harrison , F.A

    barticle Baloković , M. , Harrison , F.A. , Madejski , G. , : Nustar survey of obscured swift/bat-selected active galactic nuclei. ii. median high-energy cutoff in seyfert ii hard x-ray spectra . The Astrophysical Journal 905 ( 1 ), 41 ( 2020 ) 10.3847/1538-4357/abc342 barticle

  4. [12]

    , Moretti , A

    barticle Belladitta , S. , Moretti , A. , Caccianiga , A. , : The first blazar observed at z > 6 . 635 , 7 ( 2020 ) 10.1051/0004-6361/201937395 https://arxiv.org/abs/2002.05178 arXiv:2002.05178 [astro-ph.CO] barticle

  5. [13]

    , O'Dea , C.P

    barticle Baum , S.A. , O'Dea , C.P. , Dallacassa , D. , de Bruyn , A.G. , Pedlar , A. : Kiloparsec-Scale Radio Emission in Seyfert Galaxies: Evidence for Starburst-driven Superwinds? 419 , 553 ( 1993 ) 10.1086/173508 barticle

  6. [14]

    , et al.: Multi-Epoch Modeling of 5BZB J0630-0624 (in prep.) botherref

    botherref Buson , S. , et al.: Multi-Epoch Modeling of 5BZB J0630-0624 (in prep.) botherref

  7. [15]

    , Tramacere , A

    botherref Buson , S. , Tramacere , A. , Oswald , L. , et al.: Extragalactic neutrino factories . arXiv e-prints, 2305--11263 (2023) 10.48550/arXiv.2305.11263 https://arxiv.org/abs/2305.11263 arXiv:2305.11263 [astro-ph.HE] botherref

  8. [16]

    , Tramacere , A

    barticle Buson , S. , Tramacere , A. , Pfeiffer , L. , : Beginning a Journey Across the Universe: The Discovery of Extragalactic Neutrino Factories . 933 ( 2 ), 43 ( 2022 ) 10.3847/2041-8213/ac7d5b https://arxiv.org/abs/2207.06314 arXiv:2207.06314 [astro-ph.HE] barticle

  9. [17]

    , Tramacere , A

    barticle Buson , S. , Tramacere , A. , Pfeiffer , L. , : Erratum: ``Beginning a Journey Across the Universe: The Discovery of Extragalactic Neutrino Factories'' (2022, ApJL, 933, L43) . 934 ( 2 ), 38 ( 2022 ) 10.3847/2041-8213/ac83a2 barticle

  10. [18]

    , Aharonian , F

    barticle Crocker , R.M. , Aharonian , F. : Fermi Bubbles: Giant, Multibillion-Year-Old Reservoirs of Galactic Center Cosmic Rays . Physical Review Letters 106 ( 10 ), 101102 ( 2011 ) 10.1103/PhysRevLett.106.101102 https://arxiv.org/abs/1008.2658 arXiv:1008.2658 [astro-ph.GA] barticle

  11. [19]

    , Ajello , M

    barticle Caputo , R. , Ajello , M. , Kierans , C.A. , : All-sky Medium Energy Gamma-ray Observatory eXplorer mission concept . Journal of Astronomical Telescopes, Instruments, and Systems 8 , 044003 ( 2022 ) 10.1117/1.JATIS.8.4.044003 https://arxiv.org/abs/2208.04990 arXiv:220...

  12. [20]

    , Bicknell , G.V

    barticle Crocker , R.M. , Bicknell , G.V. , Taylor , A.M. , Carretti , E. : A Unified Model of the Fermi Bubbles, Microwave Haze, and Polarized Radio Lobes: Reverse Shocks in the Galactic Center s Giant Outflows . 808 ( 2 ), 107 ( 2015 ) 10.1088/0004-637X/808/2/107 https://arx...

  13. [21]

    , Chernyshov , D.O

    barticle Cheng , K.-S. , Chernyshov , D.O. , Dogiel , V.A. , Ko , C.-M. , Ip , W.-H. : Origin of the Fermi Bubble . 731 ( 1 ), 17 ( 2011 ) 10.1088/2041-8205/731/1/L17 https://arxiv.org/abs/1103.1002 arXiv:1103.1002 [astro-ph.HE] barticle

  14. [22]

    , Frey , S

    barticle Cao , H.-M. , Frey , S. , Gab \'a nyi , K. \'E . , : VLBI observations of four radio quasars at z > 4 : blazars or not? 467 ( 1 ), 950 -- 960 ( 2017 ) 10.1093/mnras/stx160 https://arxiv.org/abs/1701.04760 arXiv:1701.04760 [astro-ph.GA] barticle

  15. [23]

    , Moretti , A

    barticle Caccianiga , A. , Moretti , A. , Belladitta , S. , : The space density of z > 4 blazars . 484 ( 1 ), 204 -- 217 ( 2019 ) 10.1093/mnras/sty3526 https://arxiv.org/abs/1901.02910 arXiv:1901.02910 [astro-ph.GA] barticle

  16. [24]

    , Sizun , P

    barticle Cadolle Bel , M. , Sizun , P. , Goldwurm , A. , : The broad-band spectrum of Cygnus X-1 measured by INTEGRAL . 446 ( 2 ), 591 -- 602 ( 2006 ) 10.1051/0004-6361:20053068 https://arxiv.org/abs/astro-ph/0509851 arXiv:astro-ph/0509851 [astro-ph] barticle

  17. [25]

    , B \"o ttcher , M

    barticle Diltz , C. , B \"o ttcher , M. : Leptonic and Lepto-Hadronic Modeling of the 2010 November Flare from 3C 454.3 . 826 ( 1 ), 54 ( 2016 ) 10.3847/0004-637X/826/1/54 https://arxiv.org/abs/1605.06923 arXiv:1605.06923 [astro-ph.HE] barticle

  18. [26]

    , Tatischeff , V

    barticle de Angelis , A. , Tatischeff , V. , Grenier , I.A. , : Science with e-ASTROGAM. A space mission for MeV-GeV gamma-ray astrophysics . Journal of High Energy Astrophysics 19 , 1 -- 106 ( 2018 ) 10.1016/j.jheap.2018.07.001 https://arxiv.org/abs/1711.01265 arXiv:1711.0126...

  19. [27]

    , Bertsch , D.L

    barticle Fichtel , C.E. , Bertsch , D.L. , Chiang , J. , : The First Energetic Gamma-Ray Experiment Telescope (EGRET) Source Catalog . 94 , 551 ( 1994 ) 10.1086/192082 barticle

  20. [28]

    , Biermann , P.L

    barticle Falcke , H. , Biermann , P.L. , Duschl , W.J. , Mezger , P.G. : A rotating black hole in the galactic center. 270 , 102 -- 106 ( 1993 ) 10.48550/arXiv.astro-ph/9212001 https://arxiv.org/abs/astro-ph/9212001 arXiv:astro-ph/9212001 [astro-ph] barticle

  21. [29]

    , Buson , S

    barticle Fichet de Clairfontaine , G. , Buson , S. , Pfeiffer , L. , : Hadronic Processes at Work in 5BZB J0630-2406 . 958 ( 1 ), 2 ( 2023 ) 10.3847/2041-8213/ad0644 https://arxiv.org/abs/2310.03698 arXiv:2310.03698 [astro-ph.HE] barticle

  22. [30]

    , Gillard , W

    barticle Ferri \`e re , K. , Gillard , W. , Jean , P. : Spatial distribution of interstellar gas in the innermost 3 kpc of our galaxy . 467 ( 2 ), 611 -- 627 ( 2007 ) 10.1051/0004-6361:20066992 https://arxiv.org/abs/astro-ph/0702532 arXiv:astro-ph/0702532 [astro-ph] barticle

  23. [31]

    , Riley , J.M

    barticle Fanaroff , B.L. , Riley , J.M. : The morphology of extragalactic radio sources of high and low luminosity . 167 , 31 -- 36 ( 1974 ) 10.1093/mnras/167.1.31P barticle

  24. [32]

    : A COBE Model of the Galactic Bar and Disk

    barticle Freudenreich , H.T. : A COBE Model of the Galactic Bar and Disk . 492 ( 2 ), 495 -- 510 ( 1998 ) 10.1086/305065 https://arxiv.org/abs/astro-ph/9707340 arXiv:astro-ph/9707340 [astro-ph] barticle

  25. [33]

    , Titov , O

    barticle Frey , S. , Titov , O. , Melnikov , A.E. , de Vicente , P. , Shu , F. : High-resolution radio imaging of two luminous quasars beyond redshift 4.5 . 618 , 68 ( 2018 ) 10.1051/0004-6361/201832771 https://arxiv.org/abs/1807.06837 arXiv:1807.06837 [astro-ph.GA] barticle

  26. [34]

    , Axon , D.J

    barticle Gallimore , J.F. , Axon , D.J. , O'Dea , C.P. , Baum , S.A. , Pedlar , A. : A Survey of Kiloparsec-Scale Radio Outflows in Radio-Quiet Active Galactic Nuclei . 132 ( 2 ), 546 -- 569 ( 2006 ) 10.1086/504593 https://arxiv.org/abs/astro-ph/0604219 arXiv:astro-ph/0604219 ...

  27. [35]

    , Buson , S

    barticle Garrappa , S. , Buson , S. , Sinapius , J. , : Fermi-LAT follow-up observations in seven years of real-time high-energy neutrino alerts . 687 , 59 ( 2024 ) 10.1051/0004-6361/202449221 https://arxiv.org/abs/2401.06666 arXiv:2401.06666 [astro-ph.HE] barticle

  28. [36]

    , Comastri , A

    barticle Gilli , R. , Comastri , A. , Hasinger , G. : The synthesis of the cosmic X-ray background in the Chandra and XMM-Newton era . 463 ( 1 ), 79 -- 96 ( 2007 ) 10.1051/0004-6361:20066334 https://arxiv.org/abs/astro-ph/0610939 arXiv:astro-ph/0610939 [astro-ph] barticle

  29. [37]

    , Della Ceca , R

    barticle Ghisellini , G. , Della Ceca , R. , Volonteri , M. , : Chasing the heaviest black holes of jetted active galactic nuclei . 405 ( 1 ), 387 -- 400 ( 2010 ) 10.1111/j.1365-2966.2010.16449.x https://arxiv.org/abs/0912.0001 arXiv:0912.0001 [astro-ph.HE] barticle

  30. [38]

    : Electron-positron pairs in blazar jets and -ray loud radio galaxies

    barticle Ghisellini , G. : Electron-positron pairs in blazar jets and -ray loud radio galaxies . 424 ( 1 ), 26 -- 30 ( 2012 ) 10.1111/j.1745-3933.2012.01280.x https://arxiv.org/abs/1205.0549 arXiv:1205.0549 [astro-ph.HE] barticle

  31. [39]

    , Klein , B.L

    barticle Ghez , A.M. , Klein , B.L. , Morris , M. , Becklin , E.E. : High Proper-Motion Stars in the Vicinity of Sagittarius A*: Evidence for a Supermassive Black Hole at the Center of Our Galaxy . 509 ( 2 ), 678 -- 686 ( 1998 ) 10.1086/306528 https://arxiv.org/abs/astro-ph/98...

  32. [40]

    , Mathews , W.G

    barticle Guo , F. , Mathews , W.G. : The Fermi Bubbles. I. Possible Evidence for Recent AGN Jet Activity in the Galaxy . 756 ( 2 ), 181 ( 2012 ) 10.1088/0004-637X/756/2/181 https://arxiv.org/abs/1103.0055 arXiv:1103.0055 [astro-ph.HE] barticle

  33. [41]

    , Tavecchio , F

    barticle Ghisellini , G. , Tavecchio , F. , Maraschi , L. , Celotti , A. , Sbarrato , T. : The power of relativistic jets is larger than the luminosity of their accretion disks . 515 ( 7527 ), 376 -- 378 ( 2014 ) 10.1038/nature13856 https://arxiv.org/abs/1411.5368 arXiv:1411.5...

  34. [42]

    , Maraschi , L

    barticle Haardt , F. , Maraschi , L. : X-Ray Spectra from Two-Phase Accretion Disks . 413 , 507 ( 1993 ) 10.1086/173020 barticle

  35. [43]

    , Malyshev , D

    barticle Herold , L. , Malyshev , D. : Hard and bright gamma-ray emission at the base of the Fermi bubbles . 625 , 110 ( 2019 ) 10.1051/0004-6361/201834670 https://arxiv.org/abs/1904.01454 arXiv:1904.01454 [astro-ph.HE] barticle

  36. [44]

    Science 361 ( 6398 ), 1378 ( 2018 ) 10.1126/science.aat1378 https://arxiv.org/abs/1807.08816 arXiv:1807.08816 [astro-ph.HE] barticle

    barticle IceCube Collaboration , : Multimessenger observations of a flaring blazar coincident with high-energy neutrino IceCube-170922A . Science 361 ( 6398 ), 1378 ( 2018 ) 10.1126/science.aat1378 https://arxiv.org/abs/1807.08816 arXiv:1807.08816 [astro-ph.HE] barticle

  37. [45]

    Science 378 ( 6619 ), 538 -- 543 ( 2022 ) 10.1126/science.abg3395 https://arxiv.org/abs/2211.09972 arXiv:2211.09972 [astro-ph.HE] barticle

    barticle IceCube Collaboration , : Evidence for neutrino emission from the nearby active galaxy NGC 1068 . Science 378 ( 6619 ), 538 -- 543 ( 2022 ) 10.1126/science.abg3395 https://arxiv.org/abs/2211.09972 arXiv:2211.09972 [astro-ph.HE] barticle

  38. [46]

    Science 342 ( 6161 ), 1242856 ( 2013 ) 10.1126/science.1242856 https://arxiv.org/abs/1311.5238 arXiv:1311.5238 [astro-ph.HE] barticle

    barticle IceCube Collaboration : Evidence for High-Energy Extraterrestrial Neutrinos at the IceCube Detector . Science 342 ( 6161 ), 1242856 ( 2013 ) 10.1126/science.1242856 https://arxiv.org/abs/1311.5238 arXiv:1311.5238 [astro-ph.HE] barticle

  39. [47]

    , Doi , A

    barticle Inoue , Y. , Doi , A. : Detection of Coronal Magnetic Activity in nearby Active Supermassive Black Holes . 869 ( 2 ), 114 ( 2018 ) 10.3847/1538-4357/aaeb95 https://arxiv.org/abs/1810.10732 arXiv:1810.10732 [astro-ph.HE] barticle

  40. [48]

    , Totani , T

    barticle Inoue , Y. , Totani , T. , Ueda , Y. : The Cosmic MeV Gamma - Ray Background and Hard X - Ray Spectra of Active Galactic Nuclei : Implications for the Origin of Hot AGN Coronae . The Astrophysical Journal Letters 672 , 5 ( 2008 ) 10.1086/525848 . Accessed 2021-04-13 barticle

  41. [49]

    , Sikora , M

    barticle Janiak , M. , Sikora , M. , Moderski , R. : Magnetization of jets in luminous blazars . 449 ( 1 ), 431 -- 439 ( 2015 ) 10.1093/mnras/stv200 https://arxiv.org/abs/1411.7331 arXiv:1411.7331 [astro-ph.HE] barticle

  42. [50]

    , Blaufuss , E

    barticle Kopper , C. , Blaufuss , E. : IceCube-170922A - IceCube observation of a high-energy neutrino candidate event. GRB Coordinates Network 21916 , 1 ( 2017 ) barticle

  43. [51]

    : AMEGO: exploring the extreme multimessenger universe

    bchapter Kierans , C.A. : AMEGO: exploring the extreme multimessenger universe . In: den Herder , J.-W.A. , Nikzad , S. , Nakazawa , K. (eds.) Space Telescopes and Instrumentation 2020: Ultraviolet to Gamma Ray . Society of Photo-Optical Instrumentation Engineers (SPIE) Confer...

  44. [52]

    , Richstone , D

    barticle Kormendy , J. , Richstone , D. : Inward Bound---The Search For Supermassive Black Holes In Galactic Nuclei . 33 , 581 ( 1995 ) 10.1146/annurev.aa.33.090195.003053 barticle

  45. [53]

    : The Fermi bubbles as starburst wind termination shocks

    barticle Lacki , B.C. : The Fermi bubbles as starburst wind termination shocks. 444 , 39 -- 43 ( 2014 ) 10.1093/mnrasl/slu107 https://arxiv.org/abs/1304.6137 arXiv:1304.6137 [astro-ph.HE] barticle

  46. [54]

    , Gilli , R

    barticle Lanzuisi , G. , Gilli , R. , Cappi , M. , : NuSTAR Measurement of Coronal Temperature in Two Luminous, High-redshift Quasars . 875 ( 2 ), 20 ( 2019 ) 10.3847/2041-8213/ab15dc https://arxiv.org/abs/1904.04784 arXiv:1904.04784 [astro-ph.HE] barticle

  47. [55]

    , Wang , R

    barticle Liu , Y. , Wang , R. , Momjian , E. , : Constraining the Quasar Radio-loud Fraction at z 6 with Deep Radio Observations . 908 ( 2 ), 124 ( 2021 ) 10.3847/1538-4357/abd3a8 https://arxiv.org/abs/2012.07301 arXiv:2012.07301 [astro-ph.GA] barticle

  48. [56]

    : Galactic Nuclei as Collapsed Old Quasars

    barticle Lynden-Bell , D. : Galactic Nuclei as Collapsed Old Quasars . 223 ( 5207 ), 690 -- 694 ( 1969 ) 10.1038/223690a0 barticle

  49. [57]

    , Ajello , M

    barticle Marcotulli , L. , Ajello , M. , Urry , C.M. , : BASS. XXXIII. Swift-BAT Blazars and Their Jets through Cosmic Time . 940 ( 1 ), 77 ( 2022 ) 10.3847/1538-4357/ac937f https://arxiv.org/abs/2209.09929 arXiv:2209.09929 [astro-ph.HE] barticle

  50. [58]

    , Bertsch , D.L

    barticle Mukherjee , R. , Bertsch , D.L. , Bloom , S.D. , : EGRET Observations of High-Energy Gamma-Ray Emission from Blazars: An Update . 490 ( 1 ), 116 -- 135 ( 1997 ) 10.1086/304851 barticle

  51. [59]

    , Bell , A.R

    barticle Matthews , J.H. , Bell , A.R. , Blundell , K.M. : Particle acceleration in astrophysical jets . 89 , 101543 ( 2020 ) 10.1016/j.newar.2020.101543 https://arxiv.org/abs/2003.06587 arXiv:2003.06587 [astro-ph.HE] barticle

  52. [60]

    , del Palacio , S

    botherref Mutie , I.M. , del Palacio , S. , Beswick , R.J. , Williams-Baldwin , D. , Gallimore , J.F. , Gallagher , J.S. , Aalto , S.E. , Baki , P.O. : A consistent radio to sub-mm pc-scale study of the nucleus of NGC 1068 . arXiv e-prints, 2503--20303 (2025) 10.48550/arXiv.25...

  53. [61]

    , Jorstad , S.G

    barticle Marscher , A.P. , Jorstad , S.G. , G \'o mez , J.L. , McHardy , I.M. , Krichbaum , T.P. , Agudo , I. : Search for Electron-Positron Annihilation Radiation from the Jet in 3C 120 . 665 ( 1 ), 232 -- 236 ( 2007 ) 10.1086/519481 barticle

  54. [62]

    , Kimura , S.S

    barticle Murase , K. , Kimura , S.S. , M \'e sz \'a ros , P. : Hidden Cores of Active Galactic Nuclei as the Origin of Medium-Energy Neutrinos: Critical Tests with the MeV Gamma-Ray Connection . 125 ( 1 ), 011101 ( 2020 ) 10.1103/PhysRevLett.125.011101 https://arxiv.org/abs/19...

  55. [63]

    , Oikonomou , F

    barticle Murase , K. , Oikonomou , F. , Petropoulou , M. : Blazar Flares as an Origin of High-energy Cosmic Neutrinos? 865 ( 2 ), 124 ( 2018 ) 10.3847/1538-4357/aada00 https://arxiv.org/abs/1807.04748 arXiv:1807.04748 [astro-ph.HE] barticle

  56. [64]

    , Pounds , K.A

    barticle Nandra , K. , Pounds , K.A. : GINGA observations of the X-ray spectra of Seyfert galaxies. 268 , 405 -- 429 ( 1994 ) 10.1093/mnras/268.2.405 barticle

  57. [65]

    , Haardt , F

    barticle Petrucci , P.O. , Haardt , F. , Maraschi , L. , : Testing Comptonization Models Using BeppoSAX Observations of Seyfert 1 Galaxies . 556 ( 2 ), 716 -- 726 ( 2001 ) 10.1086/321629 https://arxiv.org/abs/astro-ph/0101219 arXiv:astro-ph/0101219 [astro-ph] barticle

  58. [66]

    , J \'o hannesson , G

    barticle Porter , T.A. , J \'o hannesson , G. , Moskalenko , I.V. : High-energy Gamma Rays from the Milky Way: Three-dimensional Spatial Models for the Cosmic-Ray and Radiation Field Densities in the Interstellar Medium . 846 ( 1 ), 67 ( 2017 ) 10.3847/1538-4357/aa844d https:/...

  59. [67]

    , Svensson , R

    barticle Poutanen , J. , Svensson , R. : The Two-Phase Pair Corona Model for Active Galactic Nuclei and X-Ray Binaries: How to Obtain Exact Solutions . 470 , 249 ( 1996 ) 10.1086/177865 https://arxiv.org/abs/astro-ph/9605073 arXiv:astro-ph/9605073 [astro-ph] barticle

  60. [68]

    , Sunyaev , R.A

    barticle Predehl , P. , Sunyaev , R.A. , Becker , W. , Brunner , H. , Burenin , R. , Bykov , A. , Cherepashchuk , A. , Chugai , N. , Churazov , E. , Doroshenko , V. , Eismont , N. , Freyberg , M. , Gilfanov , M. , Haberl , F. , Khabibullin , I. , Krivonos , R. , Maitra , C. , ...

  61. [69]

    , Zhang , H

    barticle Paliya , V.S. , Zhang , H. , B \"o ttcher , M. , : Leptonic and Hadronic Modeling of Fermi-LAT Hard Spectrum Quasars and Predictions for High-energy Polarization . 863 ( 1 ), 98 ( 2018 ) 10.3847/1538-4357/aad1f0 https://arxiv.org/abs/1807.02085 arXiv:1807.02085 [astro...

  62. [70]

    , Mushotzky , F.R

    barticle Rothschild , R.E. , Mushotzky , F.R. , Baity , W.A. , Gruber , D.E. , Matteson , J.L. , Peterson , L.E. : 2-165 keV observations of active galaxies and the diffuse background. 269 , 423 -- 437 ( 1983 ) 10.1086/161053 barticle

  63. [71]

    : Accretion of Interstellar Matter by Massive Objects

    barticle Salpeter , E.E. : Accretion of Interstellar Matter by Massive Objects. 140 , 796 -- 800 ( 1964 ) 10.1086/147973 barticle

  64. [72]

    : The Fermi/eROSITA bubbles: a look into the nuclear outflow from the Milky Way

    barticle Sarkar , K.C. : The Fermi/eROSITA bubbles: a look into the nuclear outflow from the Milky Way . 32 ( 1 ), 1 ( 2024 ) 10.1007/s00159-024-00152-1 https://arxiv.org/abs/2403.09824 arXiv:2403.09824 [astro-ph.HE] barticle

  65. [73]

    : Big and Young Supermassive Black Holes in the Early Universe

    barticle Sbarrato , T. : Big and Young Supermassive Black Holes in the Early Universe . Galaxies 9 ( 2 ), 23 ( 2021 ) 10.3390/galaxies9020023 https://arxiv.org/abs/2107.09940 arXiv:2107.09940 [astro-ph.HE] barticle

  66. [74]

    , B a \.z ejowski , M

    barticle Sikora , M. , B a \.z ejowski , M. , Moderski , R. , Madejski , G.M. : On the Nature of MeV Blazars . 577 ( 1 ), 78 -- 84 ( 2002 ) 10.1086/342164 https://arxiv.org/abs/astro-ph/0205527 arXiv:astro-ph/0205527 [astro-ph] barticle

  67. [75]

    , Ghisellini , G

    barticle Sbarrato , T. , Ghisellini , G. , Tagliaferri , G. , : Blazar candidates beyond redshift 4 observed by Swift . 446 ( 3 ), 2483 -- 2489 ( 2015 ) 10.1093/mnras/stu2269 https://arxiv.org/abs/1410.0364 arXiv:1410.0364 [astro-ph.HE] barticle

  68. [76]

    , Ghisellini , G

    barticle Sbarrato , T. , Ghisellini , G. , Tagliaferri , G. , Tavecchio , F. , Ghirlanda , G. , Costamante , L. : Blazar nature of high-z radio-loud quasars . 663 , 147 ( 2022 ) 10.1051/0004-6361/202243569 https://arxiv.org/abs/2203.09527 arXiv:2203.09527 [astro-ph.HE] barticle

  69. [77]

    , Moskalenko , I.V

    barticle Strong , A.W. , Moskalenko , I.V. , Reimer , O. : A New Determination of the Extragalactic Diffuse Gamma-Ray Background from EGRET Data . 613 ( 2 ), 956 -- 961 ( 2004 ) 10.1086/423196 https://arxiv.org/abs/astro-ph/0405441 arXiv:astro-ph/0405441 [astro-ph] barticle

  70. [78]

    , Mondal , S

    barticle Sarkar , K.C. , Mondal , S. , Sharma , P. , Piran , T. : Misaligned Jets from Sgr A* and the Origin of Fermi/eROSITA Bubbles . 951 ( 1 ), 36 ( 2023 ) 10.3847/1538-4357/acd75d https://arxiv.org/abs/2211.12967 arXiv:2211.12967 [astro-ph.HE] barticle

  71. [79]

    , Nath , B.B

    barticle Sarkar , K.C. , Nath , B.B. , Sharma , P. : Clues to the origin of Fermi bubbles from O viii/O vii line ratio . 467 ( 3 ), 3544 -- 3555 ( 2017 ) 10.1093/mnras/stx314 https://arxiv.org/abs/1610.00719 arXiv:1610.00719 [astro-ph.GA] barticle

  72. [80]

    , Slatyer , T.R

    barticle Su , M. , Slatyer , T.R. , Finkbeiner , D.P. : Giant Gamma-ray Bubbles from Fermi-LAT: Active Galactic Nucleus Activity or Bipolar Galactic Wind? 724 ( 2 ), 1044 -- 1082 ( 2010 ) 10.1088/0004-637X/724/2/1044 https://arxiv.org/abs/1005.5480 arXiv:1005.5480 [astro-ph.HE...

  73. [81]

    , Tagliaferri , G

    barticle Sbarrato , T. , Tagliaferri , G. , Ghisellini , G. , : NuSTAR Detection of the Blazar B2 1023+25 at Redshift 5.3 . 777 ( 2 ), 147 ( 2013 ) 10.1088/0004-637X/777/2/147 https://arxiv.org/abs/1309.3280 arXiv:1309.3280 [astro-ph.CO] barticle

  74. [82]

    , Boggs , S.E

    botherref Tomsick , J.A. , Boggs , S.E. , Zoglauer , A. , et al.: The Compton Spectrometer and Imager . arXiv e-prints, 2308--12362 (2023) 10.48550/arXiv.2308.12362 https://arxiv.org/abs/2308.12362 arXiv:2308.12362 [astro-ph.HE] botherref

  75. [83]

    : Disk-Accretion onto a Black Hole

    barticle Thorne , K.S. : Disk-Accretion onto a Black Hole. II. Evolution of the Hole . 191 , 507 -- 520 ( 1974 ) 10.1086/152991 barticle

  76. [84]

    , Mushotzky , R.F

    barticle Tueller , J. , Mushotzky , R.F. , Barthelmy , S. , Cannizzo , J.K. , Gehrels , N. , Markwardt , C.B. , Skinner , G.K. , Winter , L.M. : Swift BAT Survey of AGNs . 681 ( 1 ), 113 -- 127 ( 2008 ) 10.1086/588458 https://arxiv.org/abs/0711.4130 arXiv:0711.4130 [astro-ph] barticle

  77. [85]

    , Maraschi , L

    barticle Tavecchio , F. , Maraschi , L. , Sambruna , R.M. , Urry , C.M. : The X-Ray Jet of PKS 0637-752: Inverse Compton Radiation from the Cosmic Microwave Background? 544 ( 1 ), 23 -- 26 ( 2000 ) 10.1086/317292 https://arxiv.org/abs/astro-ph/0007441 arXiv:astro-ph/0007441 [a...

  78. [86]

    , Urry , C.M

    barticle Treister , E. , Urry , C.M. , Virani , S. : The Space Density of Compton-Thick Active Galactic Nucleus and the X-Ray Background . 696 ( 1 ), 110 -- 120 ( 2009 ) 10.1088/0004-637X/696/1/110 https://arxiv.org/abs/0902.0608 arXiv:0902.0608 [astro-ph.CO] barticle

  79. [87]

    , Padovani , P

    barticle Urry , C.M. , Padovani , P. : Unified Schemes for Radio-Loud Active Galactic Nuclei . 107 , 803 ( 1995 ) 10.1086/133630 https://arxiv.org/abs/astro-ph/9506063 arXiv:astro-ph/9506063 [astro-ph] barticle

  80. [88]

    , Haardt , F

    barticle Volonteri , M. , Haardt , F. , Ghisellini , G. , Della Ceca , R. : Blazars in the early Universe . 416 ( 1 ), 216 -- 224 ( 2011 ) 10.1111/j.1365-2966.2011.19024.x https://arxiv.org/abs/1103.5565 arXiv:1103.5565 [astro-ph.HE] barticle

  81. [89]

    , J \'o hannesson , G

    barticle Vladimirov , A.E. , J \'o hannesson , G. , Moskalenko , I.V. , Porter , T.A. : Testing the Origin of High-energy Cosmic Rays . 752 ( 1 ), 68 ( 2012 ) 10.1088/0004-637X/752/1/68 https://arxiv.org/abs/1108.1023 arXiv:1108.1023 [astro-ph.HE] barticle

  82. [90]

    , Becker , R.H

    barticle White , R.L. , Becker , R.H. , Helfand , D.J. , Gregg , M.D. : A Catalog of 1.4 GHz Radio Sources from the FIRST Survey . 475 ( 2 ), 479 -- 493 ( 1997 ) 10.1086/303564 barticle

  83. [91]

    , Varendorff , M

    bchapter Weidenspointner , G. , Varendorff , M. , Kappadath , S.C. , : The cosmic diffuse gamma-ray background measured with COMPTEL . In: McConnell , M.L. , Ryan , J.M. (eds.) The Fifth Compton Symposium . American Institute of Physics Conference Series , vol. 510 , pp. 467 -...

  84. [92]

    , Ruszkowski , M

    barticle Yang , H.-Y.K. , Ruszkowski , M. , Zweibel , E. : The Fermi bubbles: gamma-ray, microwave and polarization signatures of leptonic AGN jets . 436 ( 3 ), 2734 -- 2746 ( 2013 ) 10.1093/mnras/stt1772 https://arxiv.org/abs/1307.3551 arXiv:1307.3551 [astro-ph.GA] barticle

  85. [93]

    , B \"o ttcher , M

    barticle Zhang , H. , B \"o ttcher , M. : X-Ray and Gamma-Ray Polarization in Leptonic and Hadronic Jet Models of Blazars . 774 ( 1 ), 18 ( 2013 ) 10.1088/0004-637X/774/1/18 https://arxiv.org/abs/1307.4187 arXiv:1307.4187 [astro-ph.HE] barticle

  86. [94]

    : Thermal Comptonization in compact sources and the cosmic X-ray background

    barticle Zdziarski , A.A. : Thermal Comptonization in compact sources and the cosmic X-ray background . 233 , 739 -- 758 ( 1988 ) 10.1093/mnras/233.4.739 barticle

  87. [95]

    , King , A.R

    barticle Zubovas , K. , King , A.R. , Nayakshin , S. : The Milky Way's Fermi bubbles: echoes of the last quasar outburst? 415 , 21 -- 25 ( 2011 ) 10.1111/j.1745-3933.2011.01070.x https://arxiv.org/abs/1104.5443 arXiv:1104.5443 [astro-ph.GA] barticle

  88. [96]

    , Marchesi , S

    barticle Zhao , X. , Marchesi , S. , Ajello , M. , : The properties of the AGN torus as revealed from a set of unbiased NuSTAR observations . 650 , 57 ( 2021 ) 10.1051/0004-6361/202140297 https://arxiv.org/abs/2011.03851 arXiv:2011.03851 [astro-ph.GA] barticle

  89. [97]

    , Phuravhathu , D.G

    barticle Zdziarski , A.A. , Phuravhathu , D.G. , Sikora , M. , B \"o ttcher , M. , Chibueze , J.O. : The Composition and Power of the Jet of the Broad-line Radio Galaxy 3C 120 . 928 ( 1 ), 9 ( 2022 ) 10.3847/2041-8213/ac5b70 https://arxiv.org/abs/2202.11174 arXiv:2202.11174 [a...

  90. [98]

    , Zycki , P.T

    barticle Zdziarski , A.A. , Zycki , P.T. , Krolik , J.H. : Active Galactic Nuclei Make the Cosmic X-Ray Background . 414 , 81 ( 1993 ) 10.1086/187001 barticle

  91. [99]

    write newline

    " write newline "" before.all 'output.state := FUNCTION string.to.integer 't := t text.length 'k := #1 'char.num := t char.num #1 substring 's := s is.num s "." = or char.num k = not and char.num #1 + 'char.num := while char.num #1 - 'char.num := t #1 char.num substring FUNCTI...

  92. [100]

    write newline

    " write newline "" before.all 'output.state := FUNCTION string.to.integer 't := t text.length 'k := #1 'char.num := t char.num #1 substring 's := s is.num s "." = or char.num k = not and char.num #1 + 'char.num := while char.num #1 - 'char.num := t #1 char.num substring FUNCTI...

Pith tools

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