REVIEW 4 major objections 5 minor 82 references
X-ray Polarization of the High-Synchrotron-Peaked BL Lac H 1426+428
T0 review · 4 major / 5 minor · reviewed 2026-08-16 · deepseek-v4-flash
Pith's one-line read A blazar's X-ray emission is shown to be 20.6% polarized at 7.1 sigma, implying ordered jet magnetic fields.
desk verdict First IXPE measurement of H 1426+428: a clean two-epoch result, with the second-epoch polarization detection secure even after discounting the headline 7.1 sigma. 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 load-bearing mechanism is X-ray spectropolarimetry: the paper extracts the normalized Stokes parameters $q=Q/I$ and $u=U/I$ with the PCUBE algorithm, then fits the $I$, $Q$, and $U$ spectra jointly using a spectral model of the form CONSTANT$\times$TBABS$\times$POLCONST$\times$POWERLAW, where POLCONST is a model that assumes a constant polarization degree and angle across the 2–8 keV band and provides $\Pi_{\rm X}$ and $\psi_{\rm X}$ as the only free parameters. The spectral parameters are fixed from a joint fit of the total-intensity spectra with contemporaneous Swift-XRT data, and a weighted response matrix is used to boost the polarization sensitivity. This two-step spectropolarimetric procedure is what turns the modulation of photoelectron directions in IXPE into the quoted $7.1\sigma$ detection; the model-independent PCUBE estimate serves as a cross-check. The physical picture that carries the interpretation is synchrotron radiation in an ordered magnetic field, whose observed polarization angle is set by the field direction projected on the sky.
What would settle it
Re-fit the second-epoch IXPE data with an energy-dependent polarization model in which $\psi_{\rm X}$ is allowed to vary linearly across 2–8 keV, with $\Pi_{\rm X}$ free in the same bins tested here; if that model fits significantly better than constant polarization and the recovered constant-polarization amplitude drops below roughly $5\sigma$, the $7.1\sigma$ detection would be an artifact of the POLCONST assumption rather than a physical ordered-field signal.
Extended reading notes
Core claim
The central claim is that the second IXPE observation of H 1426+428 (2024 July 5–7) detects $\Pi_{\rm X}=20.6\%\pm2.9\%$ with $\psi_{\rm X}=116.1^{\circ}\pm4.1^{\circ}$ in the 2–8 keV band at $7.1\sigma$ from the spectropolarimetric fit, while the model-independent PCUBE analysis independently returns $\Pi_{\rm X}=19.3\%\pm4.5\%$ and $\psi_{\rm X}=118.3^{\circ}\pm6.7^{\circ}$ at $4.8\sigma$. The first observation (2024 May 27–29) yields only $\Pi_{\rm X}<19.5\%$ at 99% confidence, and no rotation of the polarization angle is detected in either epoch. The two epochs also differ in flux and spectrum: the 2–8 keV flux rises from $(1.85\pm0.03)\times10^{-11}$ to $(3.21\pm0.04)\times10^{-11}\,\mathrm{erg\,cm^{-2}\,s^{-1}}$ while the photon index hardens from $2.29\pm0.04$ to $2.00\pm0.03$, consistent with harder-when-brighter behavior. The paper interprets the polarized, hard, bright X-rays as synchrotron emission from shock-accelerated electrons in an ordered magnetic field region, with the first-epoch non-detection attributed to limited photon statistics.
Load-bearing premise
The headline detection assumes the polarization is constant across the whole 2–8 keV band and that the telescope's calibrated polarized response is correct; if the polarization angle actually rotates with energy, the reported 20.6% degree and 7.1 sigma significance could be biased.
Editorial extensions
If this is right
- The July 2024 X-ray emission from H 1426+428 originates in a region where magnetic fields are ordered on the scale of the emitting volume, so the measured angle is a direct probe of the magnetic-field geometry near the particle acceleration site.
- The May 2024 non-detection does not require disordered magnetic fields or a rotating angle; with the photon statistics available, a polarization level similar to July's could have gone undetected.
- The flux increase, spectral hardening, and roughly two-day synchrotron cooling time imply fresh high-energy electrons were injected between the two epochs, so the polarized, bright state is tied to a shock-like event rather than to the older electron population.
- The significant polarization only below 5 keV is consistent with IXPE's falling effective area at higher energies, and the high minimum detectable polarization values there mean future instruments with better high-energy response could reveal polarization above 5 keV in similar states.
- The large X-ray-to-optical polarization ratio (about 7) and the misalignment between X-ray angle and radio jet direction imply that the X-ray and optical/radio emission zones are not simply co-located.
Reading between the lines
- If the shock-reacceleration picture is correct, a future IXPE observation during another bright, hard X-ray state should again find a high polarization degree with a similar angle; observing a rotation or a much lower degree would require a different field geometry.
- Because the two IXPE epochs are separated by about 36 days while the X-ray-emitting electrons cool in about 2 days, the two observations sample independent electron populations; simultaneous radio-to-TeV monitoring across such a transition could locate the ordered-field region along the jet.
- The paper's energy-resolved null above 5 keV is attributed to photon statistics, a claim that a next-generation X-ray polarimeter with larger effective area at 5–10 keV could settle: detection there would support the statistical explanation, while a persistent null would point to physical depolarization at high energies.
- The first-epoch upper limit being compatible with the same polarization level suggests H 1426+428 may be polarized even in its quiescent state; a much longer IXPE exposure outside flares could measure that polarization directly.
Signed reviews
Editorial analysis
A structured set of objections, weighed in public.
Referee Report
Summary. The paper reports X-ray polarization measurements of the high-synchrotron-peaked BL Lac object H 1426+428 from two IXPE observations. For the first epoch (2024 May), the authors derive an upper limit on the polarization degree, Pi_X < 19.5% at 99% confidence. For the second epoch (2024 July), they report Pi_X = 20.6% +/- 2.9% with polarization angle psi_X = 116.1 deg +/- 4.1 deg, claimed at 7.1 sigma from a spectropolarimetric fit, while a model-independent PCUBE analysis yields Pi_X = 19.3% +/- 4.5% at 4.8 sigma. The paper also presents time-resolved and energy-resolved polarization analyses, long-term Swift-XRT and Fermi-LAT light curves, a harder-when-brighter correlation in X-rays, and a discussion of shock acceleration in ordered magnetic fields as the likely origin of the second-epoch X-ray emission.
Significance. If the second-epoch detection is robust, the paper adds a new extreme-high-synchrotron-peaked blazar to the small sample of HSPs with significant IXPE detections and high X-ray polarization, supporting the idea of ordered magnetic fields close to the particle acceleration site. The consistency between the model-independent PCUBE result and the spectropolarimetric fit is a genuine strength, as is the detailed energy-resolved analysis showing the signal is concentrated below 5 keV. However, the headline 7.1 sigma significance and the claimed 'significant' harder-when-brighter correlation are currently overstated and need to be corrected before the central conclusions can be accepted as stated.
major comments (4)
- [Abstract; Section 3.1, Table 1] The claimed 7.1 sigma confidence level for the second-epoch detection is not supported by an explicit null-hypothesis test. The quoted value appears to be the ratio Pi_X / sigma(Pi_X) from the POLCONST fit, but the paper does not report the Delta chi-square between models with Pi_X free and Pi_X = 0, nor an unweighted XSPEC cross-check. The model-independent PCUBE analysis gives a lower significance of 4.8 sigma with consistent parameters. Since the spectropolarimetric significance depends on the weighted alpha075 response and the constant-polarization assumption, the 7.1 sigma value likely overstates the detection significance. Please provide a proper significance estimate (e.g., a likelihood-ratio test or a Monte Carlo null-hypothesis test) or quote the PCUBE significance as the primary detection significance; at minimum, explicitly define what 7.1 sigma represents.
- [Section 4.1, Figure 6] The statement that the harder-when-brighter correlation is 'significant' is not supported by the data. With only six points in Figure 6, a Pearson correlation of r = -0.76 yields a two-tailed p-value of about 0.08, which is not significant at the 5% level. The reported bootstrap uncertainty of +/- 0.05 is implausibly small for n=6 and does not capture the sampling uncertainty. Please report the sample size and a proper significance test (e.g., a p-value from a permutation test or a Spearman rank correlation) and adjust the wording accordingly; if the trend is not formally significant, describe it as a tentative tendency.
- [Section 2; Section 3.1] The POLCONST fits fix the spectral parameters (Gamma_X, N_H, and normalization) at the best-fit values from the joint IXPE/Swift-XRT analysis without propagating their uncertainties into Pi_X and psi_X. The quoted 1-sigma error on Pi_X and the 7.1 sigma significance therefore ignore a possible systematic contribution. Please assess the impact by repeating the spectropolarimetric fit with spectral parameters varied within their 1-sigma ranges (or by marginalizing over them) and report the resulting systematic uncertainty on Pi_X.
- [Section 3.3] The energy-resolved analysis demonstrates that the significant polarization in the second epoch is dominated by photons below about 5 keV, with no detection above 5 keV. The headline 2-8 keV POLCONST value therefore averages over an energy range where the polarization may not be constant. Please report the POLCONST result restricted to 2-5 keV (and perhaps 2-4 keV) and discuss whether the constant-polarization assumption biases the reported Pi_X or its significance; this will also clarify the energy dependence of the polarization.
minor comments (5)
- [Section 3.2] The phrase 'week polarization' should be corrected to 'weak polarization'.
- [Figure A.1 caption] The caption contains a duplicated word: 'first first'.
- [Figure 2 caption] The text 'IPXE' in the caption is a typo and should be 'IXPE'.
- [Table A.1] The column header 'Fluxe' should be 'Flux'.
- [Section 3.1] The paper does not report the null-hypothesis probability or Delta chi-square for the spectropolarimetric detection; adding this would strengthen the statistical presentation.
Circularity Check
No circularity: the polarization parameters are fitted directly to the IXPE Stokes spectra and independently cross-checked with the PCUBE algorithm.
full rationale
The paper's central results (Pi_X and psi_X) are obtained by fitting the POLCONST model to the IXPE Stokes I, Q, and U spectra, with Pi_X and psi_X as free parameters; the spectral parameters are fixed from a separate joint IXPE/Swift-XRT power-law fit, but the polarization parameters are not defined in terms of each other or of the interpretive conclusion. The model-independent PCUBE analysis provides an independent cross-check with consistent values (Pi_X = 19.3% +/- 4.5%, psi_X = 118.3 +/- 6.7 deg) versus the spectropolarimetric result (Pi_X = 20.6% +/- 2.9%, psi_X = 116.1 +/- 4.1 deg). The harder-when-brighter correlation is computed from independent flux and spectral-index measurements using a bootstrap correlation coefficient, so it is not derived from the polarization fit. The interpretation in terms of shock-accelerated electrons in an ordered magnetic field is a standard external inference, not an input to the measurement. No load-bearing self-citation is present: the cited prior works by the same authors are used only as methodological examples (Xie et al. 2024; Errando et al. 2024; Hu et al. 2024b) and for phenomenological comparison. The '7.1 sigma' is a fit-derived significance, not a separately predicted quantity; any concern about its statistical interpretation is a correctness issue, not a circularity issue.
Assumptions & free parameters
free parameters (4)
- Photon spectral index Gamma_X per epoch =
2.29 ± 0.04 (obs 1); 2.00 ± 0.03 (obs 2)
- Column density N_H per epoch =
9.65+1.39-1.31 and 5.48+1.60-1.45 x 10^20 cm^-2
- Polarization degree and angle from POLCONST =
Pi_X = 20.6% ± 2.9%, psi_X = 116.1° ± 4.1° (obs 2); Pi_X < 19.5% (obs 1)
- N_H for MAGIC-era Swift-XRT spectra =
5.20 x 10^20 cm^-2 (fixed)
assumptions (4)
- domain assumption IXPE calibration and background subtraction are accurate, including the alpha075 response, the unweighted PCUBE method, and the 60 arcsecond source region with a 120 to 270 arcsecond background annulus.
- domain assumption The X-ray spectrum in the 2-8 keV band is an absorbed power law and the polarization is constant within the band during each epoch, as assumed by the CONSTANT x TBABS x POLCONST x POWERLAW model.
- domain assumption Representative jet parameters B = 0.1 G and delta = 8.5, taken from SED fits of TeV-emitting BL Lacs, apply to H 1426+428.
- domain assumption Harder-when-brighter X-ray behavior in HSPs is a signature of fresh high-energy electron injection by a shock.
Cite this review
Pith. "Pith review of X-ray Polarization of the High-Synchrotron-Peaked BL Lac H 1426+428." pith.science (2026). https://pith.science/paper/WLKAZWDH
@misc{pith2026250414869,
author = {Pith},
title = {Pith review of: X-ray Polarization of the High-Synchrotron-Peaked BL Lac H 1426+428},
year = {2026},
howpublished = {\url{https://pith.science/paper/WLKAZWDH}},
note = {Machine review of arXiv:2504.14869}
}
abstract
We report the X-ray polarization properties of the high-synchrotron-peaked BL Lac H 1426+428, based on two-epoch observational data from the Imaging X-ray Polarimetry Explorer (IXPE). For the first observation, only an upper limit of polarization degree ($\Pi_{\rm X}$), $\Pi_{\rm X}<19.5\%$, at the $99\%$ confidence level (C.L.) is determined. In contrast, for the second observation, we derive $\Pi_{\rm X}=20.6\%\pm2.9\%$ with a polarization angle ($\psi_{\rm X}$) of $\psi_{\rm X}=116.1^{\circ}\pm4.1^{\circ}$ at a C.L. of 7.1 $\sigma$. The time-resolved and energy-resolved polarization analysis reveals no significant variation in $\psi_{\rm X}$ and no detectable polarization within narrower energy bins for the first observation, while the polarization during the second observation is dominated by low-energy photons. Furthermore, the X-rays during the second observation are found to be in a higher flux state with a harder spectrum compared to that observed during the first observation, consistent with a {\it harder-when-brighter} behavior. We propose that the enhanced X-ray emission observed during the second observation is produced by shock-accelerated electrons within an ordered magnetic field region via synchrotron radiation. Nonetheless, no significant detection of polarization during the first IXPE observation may be due to the limited number of detected photons.
Figures
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Reference graph
Works this paper leans on
-
[1]
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thebibliography [1] 20pt to REFERENCES 6pt =0pt 10pt plus 3pt =0pt =0pt =1pt plus 1pt =0pt =0pt -12pt =13pt plus 1pt =20pt =13pt plus 1pt \@M =10000 =-1.0em =0pt =0pt 0pt =0pt =1.0em @enumiv\@empty 10000 10000 `\.\@m \@noitemerr \@latex@warning Empty `thebibliography' environment \@ifnextchar \@reference \@latexerr Missing key on reference command Each re...
-
[2]
A., Ackermann , M., Ajello , M., et al
Abdo , A. A., Ackermann , M., Ajello , M., et al. 2009, , 707, 1310, 10.1088/0004-637X/707/2/1310
-
[3]
2010, , 710, 1271, 10.1088/0004-637X/710/2/1271
---. 2010, , 710, 1271, 10.1088/0004-637X/710/2/1271
-
[4]
2022, , 260, 53, 10.3847/1538-4365/ac6751
Abdollahi , S., Acero , F., Baldini , L., et al. 2022, , 260, 53, 10.3847/1538-4365/ac6751
-
[5]
A., Ansoldi , S., Antonelli , L
Acciari , V. A., Ansoldi , S., Antonelli , L. A., et al. 2020, , 247, 16, 10.3847/1538-4365/ab5b98
-
[6]
2002, , 384, L23, 10.1051/0004-6361:20020206
Aharonian , F., Akhperjanian , A., Barrio , J., et al. 2002, , 384, L23, 10.1051/0004-6361:20020206
-
[7]
Aharonian , F. A. 2000, , 5, 377, 10.1016/S1384-1076(00)00039-7
-
[8]
1999, XSPEC: An X-ray spectral fitting package , Astrophysics Source Code Library, record ascl:9910.005
Arnaud , K., Dorman , B., & Gordon , C. 1999, XSPEC: An X-ray spectral fitting package , Astrophysics Source Code Library, record ascl:9910.005. 9910.005
1999
Show all 82 references
-
[9]
B., Abdo , A
Atwood , W. B., Abdo , A. A., Ackermann , M., et al. 2009, , 697, 1071, 10.1088/0004-637X/697/2/1071
2009 doi
-
[10]
D., et al
Baldini , L., Bucciantini , N., Lalla , N. D., et al. 2022, SoftwareX, 19, 101194, 10.1016/j.softx.2022.101194
2022
- [11]
-
[12]
2025, arXiv e-prints, arXiv:2504.12410
Banerjee , A., Garg , A., Rawat , D., et al. 2025, arXiv e-prints, arXiv:2504.12410. 2504.12410
2025 arXiv
-
[13]
1987, , 154, 1, 10.1016/0370-1573(87)90134-7
Blandford , R., & Eichler , D. 1987, , 154, 1, 10.1016/0370-1573(87)90134-7
1987 doi
-
[14]
B a \.z ejowski , M., Sikora , M., Moderski , R., & Madejski , G. M. 2000, , 545, 107, 10.1086/317791
2000 doi
-
[15]
2013, , 768, 54, 10.1088/0004-637X/768/1/54
B \"o ttcher , M., Reimer , A., Sweeney , K., & Prakash , A. 2013, , 768, 54, 10.1088/0004-637X/768/1/54
2013 doi
-
[16]
N., Hill , J
Burrows , D. N., Hill , J. E., Nousek , J. A., et al. 2005, , 120, 165, 10.1007/s11214-005-5097-2
2005 doi
-
[17]
F., Xiong , D
Chang , X., Yi , T. F., Xiong , D. R., et al. 2023, , 520, 4118, 10.1093/mnras/stad409
2023 doi
-
[18]
2022, , 925, L19, 10.3847/2041-8213/ac4d8e
Cheng , J.-G., Huang , X.-L., Wang , Z.-R., Huang , J.-K., & Liang , E.-W. 2022, , 925, L19, 10.3847/2041-8213/ac4d8e
2022 doi
-
[19]
1999, , 306, 551, 10.1046/j.1365-8711.1999.02538.x
Chiaberge , M., & Ghisellini , G. 1999, , 306, 551, 10.1046/j.1365-8711.1999.02538.x
1999
-
[20]
2018, , 121, 255101, 10.1103/PhysRevLett.121.255101
Comisso , L., & Sironi , L. 2018, , 121, 255101, 10.1103/PhysRevLett.121.255101
2018 doi
-
[21]
2001, , 371, 512, 10.1051/0004-6361:20010412
Costamante , L., Ghisellini , G., Giommi , P., et al. 2001, , 371, 512, 10.1051/0004-6361:20010412
2001 doi
-
[22]
D., & Schlickeiser , R
Dermer , C. D., & Schlickeiser , R. 1993, , 416, 458, 10.1086/173251
1993 doi
-
[23]
2022, , 938, L7, 10.3847/2041-8213/ac913a
Di Gesu , L., Donnarumma , I., Tavecchio , F., et al. 2022, , 938, L7, 10.3847/2041-8213/ac913a
2022 doi
-
[24]
L., Ehlert , S
Di Gesu , L., Marshall , H. L., Ehlert , S. R., et al. 2023, Nature Astronomy, 7, 1245, 10.1038/s41550-023-02032-7
2023 doi
-
[25]
2022, , 163, 170, 10.3847/1538-3881/ac51c9
Di Marco , A., Costa , E., Muleri , F., et al. 2022, , 163, 170, 10.3847/1538-3881/ac51c9
2022 doi
-
[26]
2023, , 165, 143, 10.3847/1538-3881/acba0f
Di Marco , A., Soffitta , P., Costa , E., et al. 2023, , 165, 143, 10.3847/1538-3881/acba0f
2023 doi
-
[27]
2002, , 391, L25, 10.1051/0004-6361:20021034
Djannati-Ata \" , A., Khelifi , B., Vorobiov , S., et al. 2002, , 391, L25, 10.1051/0004-6361:20021034
2002 doi
-
[28]
1979, Annals of Statistics, 7, 1, 10.1214/aos/1176344552
Efron , B. 1979, Annals of Statistics, 7, 1, 10.1214/aos/1176344552
1979
-
[29]
R., Liodakis , I., Middei , R., et al
Ehlert , S. R., Liodakis , I., Middei , R., et al. 2023, , 959, 61, 10.3847/1538-4357/ad05c4
2023 doi
-
[30]
P., et al
Errando , M., Liodakis , I., Marscher , A. P., et al. 2024, , 963, 5, 10.3847/1538-4357/ad1ce4
2024 doi
-
[31]
H., Yang , J
Fan , J. H., Yang , J. H., Liu , Y., et al. 2016, , 226, 20, 10.3847/0067-0049/226/2/20
2016 doi
-
[32]
V., Yakubovskyi , D
Fidelis , V. V., Yakubovskyi , D. A., & Voytkova , Y. V. 2009, Astronomy Letters, 35, 579, 10.1134/S1063773709090011
2009 doi
-
[33]
2004, , 611, 1005, 10.1086/422091
Gehrels , N., Chincarini , G., Giommi , P., et al. 2004, , 611, 1005, 10.1086/422091
2004 doi
-
[34]
1996, , 280, 67, 10.1093/mnras/280.1.67
Ghisellini , G., & Madau , P. 1996, , 280, 67, 10.1093/mnras/280.1.67
1996 doi
-
[35]
1996, , 120, 503
Ghisellini , G., Maraschi , L., & Dondi , L. 1996, , 120, 503
1996
-
[36]
2009, , 397, 985, 10.1111/j.1365-2966.2009.15007.x
Ghisellini , G., & Tavecchio , F. 2009, , 397, 985, 10.1111/j.1365-2966.2009.15007.x
2009
-
[37]
A., Craig , W
Harrison , F. A., Craig , W. W., Christensen , F. E., et al. 2013, , 770, 103, 10.1088/0004-637X/770/2/103
2013 doi
-
[38]
2016, , 594, A116, 10.1051/0004-6361/201629178
HI4PI Collaboration , Ben Bekhti , N., Fl \"o er , L., et al. 2016, , 594, A116, 10.1051/0004-6361/201629178
2016 doi
-
[39]
M., Bond , I
Horan , D., Badran , H. M., Bond , I. H., et al. 2002, , 571, 753, 10.1086/340019
2002 doi
-
[40]
2024 a , , 963, L41, 10.3847/2041-8213/ad2a4f
Hu , X.-K., Yu , Y.-W., Zhang , J., et al. 2024 a , , 963, L41, 10.3847/2041-8213/ad2a4f
2024 doi
-
[41]
2024 b , , 970, L22, 10.3847/2041-8213/ad5e68
---. 2024 b , , 970, L22, 10.3847/2041-8213/ad5e68
2024 doi
-
[42]
A., Aller , H
Hughes , P. A., Aller , H. D., & Aller , M. F. 1985, , 298, 301, 10.1086/163611
1985 doi
-
[43]
E., Di Gesu , L., Liodakis , I., et al
Kim , D. E., Di Gesu , L., Liodakis , I., et al. 2024, , 681, A12, 10.1051/0004-6361/202347408
2024 doi
- [44]
-
[45]
2015, Astroparticle Physics, 68, 45, 10.1016/j.astropartphys.2015.02.007
Kislat , F., Clark , B., Beilicke , M., & Krawczynski , H. 2015, Astroparticle Physics, 68, 45, 10.1016/j.astropartphys.2015.02.007
2015 doi
-
[46]
I., Gabuzda , D
Kollgaard , R. I., Gabuzda , D. C., & Feigelson , E. D. 1996, , 460, 174, 10.1086/176959
1996 doi
-
[47]
M., Liodakis , I., Middei , R., et al
Kouch , P. M., Liodakis , I., Middei , R., et al. 2024, , 689, A119, 10.1051/0004-6361/202449166
2024 doi
-
[48]
M., Liodakis , I., Fenu , F., et al
Kouch , P. M., Liodakis , I., Fenu , F., et al. 2025, , 695, A99, 10.1051/0004-6361/202453127
2025 doi
-
[49]
2009, arXiv e-prints, arXiv:0907.0959, 10.48550/arXiv.0907.0959
Leonardo , E., Bose , D., Mankuzhiyil , N., et al. 2009, arXiv e-prints, arXiv:0907.0959, 10.48550/arXiv.0907.0959
2009 doi
-
[50]
P., Agudo , I., et al
Liodakis , I., Marscher , A. P., Agudo , I., et al. 2022, , 611, 677, 10.1038/s41586-022-05338-0
2022 doi
- [51]
-
[52]
1992, , 397, L5, 10.1086/186531
Maraschi , L., Ghisellini , G., & Celotti , A. 1992, , 397, L5, 10.1086/186531
1992 doi
-
[53]
Marscher , A. P. 2008, in Astronomical Society of the Pacific Conference Series, Vol. 386, Extragalactic Jets: Theory and Observation from Radio to Gamma Ray, ed. T. A. Rector & D. S. De Young , 437
2008
-
[54]
2004, , 413, 489, 10.1051/0004-6361:20031558
Massaro , E., Perri , M., Giommi , P., & Nesci , R. 2004, , 413, 489, 10.1051/0004-6361:20031558
2004 doi
-
[55]
2023, , 953, L28, 10.3847/2041-8213/acec3e
Middei , R., Perri , M., Puccetti , S., et al. 2023, , 953, L28, 10.3847/2041-8213/acec3e
2023 doi
-
[56]
2019, NASA/IPAC Extragalactic Database (NED), IPAC, 10.26132/NED1
NASA/IPAC Extragalactic Database (NED) . 2019, NASA/IPAC Extragalactic Database (NED), IPAC, 10.26132/NED1
2019 doi
-
[57]
L., & Romani , R
Peirson , A. L., & Romani , R. W. 2019, , 885, 76, 10.3847/1538-4357/ab46b1
2019 doi
-
[58]
L., Negro , M., Liodakis , I., et al
Peirson , A. L., Negro , M., Liodakis , I., et al. 2023, , 948, L25, 10.3847/2041-8213/acd242
2023 doi
-
[59]
G., Pant , N., & Edwards , P
Piner , B. G., Pant , N., & Edwards , P. G. 2008, , 678, 64, 10.1086/533521
2008 doi
-
[60]
2010, , 723, 1150, 10.1088/0004-637X/723/2/1150
---. 2010, , 723, 1150, 10.1088/0004-637X/723/2/1150
2010 doi
-
[61]
M., Anderson , S
Plotkin , R. M., Anderson , S. F., Brandt , W. N., et al. 2010, , 139, 390, 10.1088/0004-6256/139/2/390
2010 doi
-
[62]
M., Falomo , R., Pesce , J
Scarpa , R., Urry , C. M., Falomo , R., Pesce , J. E., & Treves , A. 2000, , 532, 740, 10.1086/308618
2000 doi
-
[63]
C., & Rees , M
Sikora , M., Begelman , M. C., & Rees , M. J. 1994, , 421, 153, 10.1086/173633
1994 doi
-
[64]
Sikora , M., Stawarz , ., Moderski , R., Nalewajko , K., & Madejski , G. M. 2009, , 704, 38, 10.1088/0004-637X/704/1/38
2009 doi
-
[65]
2014, , 783, L21, 10.1088/2041-8205/783/1/L21
Sironi , L., & Spitkovsky , A. 2014, , 783, L21, 10.1088/2041-8205/783/1/L21
2014 doi
- [66]
-
[67]
C., & Falcone , A
Stroh , M. C., & Falcone , A. D. 2013, , 207, 28, 10.1088/0067-0049/207/2/28
2013 doi
-
[68]
Strohmayer , T. E. 2017, , 838, 72, 10.3847/1538-4357/aa643d
2017 doi
-
[69]
2021, Galaxies, 9, 37, 10.3390/galaxies9020037
Tavecchio , F. 2021, Galaxies, 9, 37, 10.3390/galaxies9020037
2021 doi
-
[70]
2018, , 480, 2872, 10.1093/mnras/sty1491
Tavecchio , F., Landoni , M., Sironi , L., & Coppi , P. 2018, , 480, 2872, 10.1093/mnras/sty1491
2018 doi
-
[71]
1998, , 509, 608, 10.1086/306526
Tavecchio , F., Maraschi , L., & Ghisellini , G. 1998, , 509, 608, 10.1086/306526
1998 doi
-
[72]
2009, , 501, 879, 10.1051/0004-6361/200810865
Tramacere , A., Giommi , P., Perri , M., Verrecchia , F., & Tosti , G. 2009, , 501, 879, 10.1051/0004-6361/200810865
2009 doi
- [73]
-
[74]
C., Soffitta , P., Baldini , L., et al
Weisskopf , M. C., Soffitta , P., Baldini , L., et al. 2022, Journal of Astronomical Telescopes, Instruments, and Systems, 8, 026002, 10.1117/1.JATIS.8.2.026002
2022 doi
-
[75]
2008, in Astronomical Society of the Pacific Conference Series, Vol
Wolter , A., Beckmann , V., Ghisellini , G., Tavecchio , F., & Maraschi , L. 2008, in Astronomical Society of the Pacific Conference Series, Vol. 386, Extragalactic Jets: Theory and Observation from Radio to Gamma Ray, ed. T. A. Rector & D. S. De Young , 302, 10.48550/arXiv.0707.2735
-
[76]
2017, in International Cosmic Ray Conference, Vol
Wood , M., Caputo , R., Charles , E., et al. 2017, in International Cosmic Ray Conference, Vol. 301, 35th International Cosmic Ray Conference (ICRC2017), 824, 10.22323/1.301.0824
2017 doi
-
[77]
2024, , 962, 92, 10.3847/1538-4357/ad17ba
Xie , F., Wong , J., La Monaca , F., et al. 2024, , 962, 92, 10.3847/1538-4357/ad17ba
2024 doi
-
[78]
2014, , 439, 2933, 10.1093/mnras/stu146
Yan , D., Zeng , H., & Zhang , L. 2014, , 439, 2933, 10.1093/mnras/stu146
2014 doi
-
[79]
2024, , 965, 58, 10.3847/1538-4357/ad26f6
Zhang , H.-Q., Lin , D.-B., Liu , K., & Liang , E.-W. 2024, , 965, 58, 10.3847/1538-4357/ad26f6
2024 doi
-
[80]
Zhang , J., Liang , E.-W., Zhang , S.-N., & Bai , J. M. 2012, , 752, 157, 10.1088/0004-637X/752/2/157
2012 doi
-
[81]
2014, , 788, 104, 10.1088/0004-637X/788/2/104
Zhang , J., Sun , X.-N., Liang , E.-W., et al. 2014, , 788, 104, 10.1088/0004-637X/788/2/104
2014 doi
-
[82]
2015, , 807, 51, 10.1088/0004-637X/807/1/51
Zhang , J., Xue , Z.-W., He , J.-J., Liang , E.-W., & Zhang , S.-N. 2015, , 807, 51, 10.1088/0004-637X/807/1/51
2015 doi
Reviewed August 16, 2026 · model on record in the stance chip above.
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