REVIEW 3 major objections 7 minor 1 cited by
NICER Perspective on TeV Blazar Mrk~421: X-ray Variability and Particle Acceleration
T0 review · 3 major / 7 minor · reviewed 2026-08-03 · deepseek-v4-flash
Pith's one-line read NICER observations of Mrk 421 over two years show persistently curved log-parabolic X-ray spectra, and the correlations among spectral parameters point to energy-dependent particle acceleration in the jet.
desk verdict Solid NICER dataset, but the Ep correlations are partly algebraic and the physical interpretation is overreached. read the letter →
The pith
A machine-rendered reading of the paper's core claim, the machinery that carries it, and where it could break.
The reading
What carries the argument
The carrying object is the log-parabolic spectral model, dN/dE ∝ (E/E1)^{-α-β log(E/E1)}, where α is the photon index at the pivot energy E1 = 1 keV and β is the curvature parameter. From it the paper derives an energy-dependent photon index Γ(E) = α + 2β log10(E/E1) and a synchrotron peak energy Ep = E1·10^{(2-α)/(2β)}. β is interpreted as the rate at which acceleration efficiency drops with energy; the model's correlations link spectral curvature to energy-dependent acceleration probability and stochastic acceleration.
What would settle it
Re-fit the 45 NICER spectra while measuring Ep from a contemporaneous broadband SED (optical through X-ray) rather than from the log-parabola parameters, and test whether the β–Ep anti-correlation survives; if it disappears, the claimed physical relation is a parameterization artifact. A second check: find a single high-quality NICER spectrum with adequate statistics that is better described by a simple power law than by a log-parabola, which would undercut the claim that curvature is universal in this source.
Extended reading notes
Core claim
The paper's central claim is that the X-ray spectra of Mrk 421 are rarely simple power laws: in 42 of the 45 NICER observations the log-parabolic model wins on an F-test, with mean photon index α ≈ 2.32 and curvature β ≈ 0.32. Across the two-year sample, the fitted parameters correlate systematically—positive α–β, negative β–synchrotron-peak-energy, positive Ep–flux, negative α–flux—which the authors read as evidence that acceleration probability decreases with particle energy, producing spectra that flatten and harden as the source brightens. They also show that a log-parabolic electron energy distribution in a synchrotron jet can reproduce the observed Ep–β anti-correlation.
Load-bearing premise
The synchrotron peak energy Ep is not measured independently; it is derived from the fitted log-parabola parameters α and β, so correlations that involve Ep are in part algebraic consequences of the definition rather than independent physical measurements.
Editorial extensions
If this is right
- Mrk 421's X-ray emission is persistently curved rather than a single power law, so single-index spectral monitoring misses part of the physics.
- The harder-when-brighter trend is quantitative: a roughly 28-fold flux increase comes with a higher synchrotron peak energy and a flatter spectrum.
- The positive α–β correlation is a fingerprint of energy-dependent acceleration, making NICER spectra a statistical test bed for acceleration models.
- The simulated Ep–β anti-correlation shows that a log-parabolic electron distribution in a synchrotron jet is sufficient to explain the observed inverse relation.
- NICER is validated as a monitoring instrument for high-synchrotron-peaked blazars, motivating coordinated multiwavelength campaigns.
Reading between the lines
- Because Ep is computed algebraically from α and β, the β–Ep anti-correlation may be partly built into the parameterization; deriving Ep from independent broadband SED fits would test its physicality.
- The lack of a clear RMS–flux relation and the multimodal flux distribution may reflect sparse, irregular sampling rather than a true multi-zone emission structure; denser monitoring could settle this.
- If simultaneous TeV observations during flares showed the X-ray peak shift and spectral flattening coinciding with gamma-ray hardening, the energy-dependent-acceleration interpretation would extend beyond the X-ray band.
- Monte Carlo propagation of fit uncertainties through Ep = E1·10^{(2-α)/(2β)} would clarify whether reported correlation coefficients (e.g., r ≈ −0.52 for β–Ep) are robust or inflated by shared parameters.
Editorial analysis
A structured set of objections, weighed in public.
Referee Report
Summary. The paper presents a two-year NICER study of the TeV blazar Mrk 421 (45 observations, 2022--2024). It reports strong X-ray variability (a factor of ~28 in mean count rate and ~48% overall fractional variability), a harder-when-brighter trend from hardness-ratio analysis, and a spectral comparison using power-law, broken power-law, and log-parabola models. The authors claim that 42 of 45 spectra are best described by a log-parabola, and that correlations among the fitted parameters---positive α--β, negative β--E_p, positive E_p--flux, and negative α/Γ--flux---support energy-dependent particle acceleration in the framework of EDAP/stochastic-acceleration models.
Significance. If the model-selection and correlation results are robust, the paper would provide a useful NICER-based characterization of a prototypical TeV blazar and demonstrate that NICER can serve as a sensitive monitor of blazar X-ray variability. The work uses standard, reproducible calibration (HEASoft, SCORPEON background) and presents a large amount of spectral fitting in Table 2; the improvements of the log-parabola over a power law are often dramatic (e.g., χ²_r from 7--14 to 0.6--1.2), which is a genuine strength. However, the interpretational claims depend heavily on correlations involving E_p, and E_p is not an independent observable: it is computed from the fitted α and β. The 'simulation' in Section 5 also reduces to the known analytic scalings rather than an independent test. The paper is therefore a potentially valuable data-driven study, but its central physical conclusion needs reframing or additional support.
major comments (3)
- [§4.2.3 and Eqs. (8)--(9)] The synchrotron peak energy E_p is not measured independently. From Eq. (9), Γ(E_p)=2 gives E_p = 10^{(2−α)/(2β)} keV (with E1=1 keV), and the tabulated E_p values in Table 2 match this formula. Consequently, Figs. 8(b), 8(d), and 8(e)---E_p--flux, β--E_p, and α--E_p---are algebraic projections of the joint distribution of α, β, and flux, not independent physical correlations. In particular, the claimed β--E_p anti-correlation can arise partly because α and β are positively correlated and most spectra have α>2. This is the central support for the EDAP/stochastic-acceleration interpretation, so the claim is overstated as written. Please either obtain E_p from an independent spectral decomposition or broadband SED, quantify the algebraic contribution via Monte Carlo error propagation, or reframe the analysis around the directly fitted parameters α, β, flux, and hardness ratio.
- [§4.2.2 and Table 2] The statement that 42 of 45 observations are 'best described by the LP model' is not supported by the reported F-test values. Table 2 lists F-tests for LP vs PL and BPL vs PL, but not for LP vs BPL; moreover, LP and BPL are not nested models, so the F-test is not a valid model-comparison statistic for that pair. In several rows (e.g., 5100110101, 5100110102, 6704018501) the BPL actually has a lower χ²_r than the LP. The selection criterion needs to be stated explicitly, and the model comparison should be done with an appropriate statistic (e.g., AIC/BIC, or a nested test where applicable). This is load-bearing because the paper's primary spectral characterization is the preference for log-parabolic curvature.
- [§4.2.3 and Fig. 8] The Pearson correlation coefficients are reported without uncertainties, p-values, or any treatment of the correlated errors in the fitted spectral parameters. With n=45, the quoted values (e.g., r = −0.52 for β--E_p) need confidence intervals; moreover, because E_p is a function of α and β, the effective number of independent points is smaller than 45. Spearman rank correlations and a multiple-comparison-aware significance assessment would strengthen the claims. As written, the reader cannot judge whether the correlations are statistically robust or dominated by a few extreme states.
minor comments (7)
- [Title and Section 2] The title contains spacing artifacts ('T eV', 'V ariability') and Section 2 has a typo 'spectral evoltion'. Please proofread.
- [Figure 1 caption] The caption ends with 'observat.'; the sentence is incomplete.
- [Eq. (3)] The formula for σ_Fvar appears garbled in rendering; please check the braces/radicals against Vaughan et al. (2003).
- [Table 2] For LP rows where β is consistent with zero (e.g., 5100110102, β=0.104±0.025), the derived E_p values are essentially unconstrained and should be flagged rather than reported as peak energies with small apparent errors.
- [§4.2.1 and Fig. 4] The 'green points' are excluded from the hardness-ratio correlation, but no objective criterion is given for identifying outliers. Please state the selection rule or show the fit with and without them.
- [§5] There is a duplicated passage describing the EDAP scenario ('The correlation can be explained...' appears twice).
- [§4.1.3] The claim of a multimodal flux distribution is based on only 45 observations with irregular cadence; the authors acknowledge limited sampling, but the wording in the abstract and conclusions is stronger than the evidence supports.
Circularity Check
The β–Ep anti-correlation is partly algebraic: Ep is defined from the fitted α and β, so this central 'physical' correlation is not an independent observable.
-
self definitional
[Section 4.2.2, Eqs. (8)–(9); Section 4.2.3, Fig. 8(d)–(e); Table 2]
"Γ(E) = α + 2β log10(E/E1). ... Figure 8(d) shows the correlation between the spectral index β and the peak energy Ep (keV). The distribution exhibits an overall negative trend (r = −0.52), with β decreasing as Ep increases"
The LP model has only two free spectral parameters, α and β. Setting Γ(Ep)=2 (the νFν peak condition) in Eq. (9) gives Ep = E1·10^{(2−α)/(2β)}, and the Ep values in Table 2 indeed match this formula. Ep is therefore a deterministic function of the fitted α and β, not an independently measured quantity. The reported β–Ep anti-correlation (and the α–Ep correlation) is an algebraic projection of the joint distribution of the fitted α and β. Presenting it as an independent observed correlation that confirms the EDAP/stochastic-acceleration scenario is circular: the 'prediction' is already contained in the definition of Ep from the LP fit.
full rationale
The core circularity is the derivation of Ep from the fitted log-parabola parameters. Because Γ(E)=α+2β log10(E/E1), the peak energy where Γ=2 is Ep=E1·10^{(2−α)/(2β)}; the paper does not state this formula but the Table 2 values reproduce it. Consequently the central β–Ep anti-correlation and the α–Ep anti-correlation are partly built into the model rather than being independent spectral observations. The theoretical argument in Section 5 (Ep ∝ ε, r ∝ 1/log ε) then 'simulates' a relation that is already implicit in the way Ep was constructed, so it does not provide independent confirmation. Other results—the LP/BPL F-test preference, the α–β correlation, the harder-when-brighter HR–flux and index–flux trends—are not circular and remain valid empirical findings. The circularity is substantial but partial, since not all of the paper's central claims reduce to the definition; score 6 rather than 8–10.
Assumptions & free parameters
assumptions (4)
- domain assumption X-ray emission in 0.4-10 keV from Mrk 421 is dominated by synchrotron radiation from a log-parabolic electron population in the jet.
- domain assumption The theoretical relations β ≃ r/5, r ∝ 1/log ε, and Ep ∝ ε from Massaro et al. (2004a, 2006) and Tramacere et al. (2007, 2011) are valid for this source.
- ad hoc to paper The F-test is a valid model-comparison statistic for the comparisons performed (PL vs LP and PL vs BPL, and possibly LP vs BPL).
- domain assumption The SCORPEON background model and NICER calibration files are accurate in the 0.4-10 keV band.
Cite this review
Pith. "Pith review of NICER Perspective on TeV Blazar Mrk~421: X-ray Variability and Particle Acceleration." pith.science (2026). https://pith.science/paper/IAAL2W57
@misc{pith2026251208531,
author = {Pith},
title = {Pith review of: NICER Perspective on TeV Blazar Mrk~421: X-ray Variability and Particle Acceleration},
year = {2026},
howpublished = {\url{https://pith.science/paper/IAAL2W57}},
note = {Machine review of arXiv:2512.08531}
}
abstract
Mrk~421 is one of the most fascinating blazars, widely studied across the electromagnetic spectrum using observations at various wavebands, from radio to the TeV gamma ray bands. We present the first detailed spectral and timing analysis of the TeV blazar Mrk~421 based on 45 X-ray observations from the \textit{NICER} X-ray telescope, collected over two years from 2022 to 2024. The source exhibits strong X-ray variability across intraday and long-term timescales. During this period, we observe a dramatic change in flux, from $\sim 50$ to $\sim 1380$~cts~s$^{-1}$, representing a $\sim 28$-fold increase. Spectral modeling with power-law, broken power-law, and log-parabolic functions shows that the log-parabola provides the most accurate description of the X-ray spectra. The hardness ratio analysis confirms a \textit{harder-when-brighter} trend, consistent with the anticorrelation between flux and photon index($\Gamma$). Correlation studies reveal a positive relation between the photon index ($\alpha$) and the curvature parameter ($\beta$) of the log-parabola model, a negative correlation between $\beta$ and synchrotron peak energy ($E_{\mathrm{p}}$), and a positive correlation between $E_{\mathrm{p}}$ and flux. In addition, the observed rapid variability indicates that the X-ray emission originates from a compact region located close to the central engine. Furthermore, using a log-parabolic electron energy distribution within the synchrotron jet scenario, we simulate the observed anti-correlation between the $E_{\rm p}$ and $\beta$. These features can be interpreted within the framework of energy-dependent particle acceleration in blazar jets, which are often associated with turbulence, strong magnetic fields, and relativistic outflows.
Figures
Figures from the paper (5 more)
Forward citations
Cited by 1 Pith paper
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X-ray Spectral Properties of Four Classical TeV Blazars using Simultaneous Observations from NICER and NuSTAR
Simultaneous NICER+NuSTAR spectra of four TeV blazars show that 6 spectra require a blackbody component interpreted as accretion disk emission during low-flux states, plus Gaussian features at 1.4–1.7 keV in Mrk 421.
Reference graph
Works this paper leans on
-
[1]
A., Ackermann, M., Agudo, I., et al
Abdo, A. A., Ackermann, M., Agudo, I., et al. 2010, ApJ, 716, 30, doi: 10.1088/0004-637X/716/1/30
-
[2]
2025, A&A, 694, A195, doi: 10.1051/0004-6361/202451624
Abe, K., Abe, S., Abhir, J., et al. 2025, A&A, 694, A195, doi: 10.1051/0004-6361/202451624
-
[3]
U., Benbow, W., Bird, R., et al
Abeysekara, A. U., Benbow, W., Bird, R., et al. 2020, ApJ, 890, 97, doi: 10.3847/1538-4357/ab6612
-
[4]
Aggrawal, V., Pandey, A., Gupta, A. C., et al. 2018, MNRAS, 480, 4873, doi: 10.1093/mnras/sty2173
-
[5]
Aharonian, F., Akhperjanian, A. G., Bazer-Bachi, A. R., et al. 2006, Nature, 440, 1018, doi: 10.1038/nature04680
-
[6]
Akbar, S., Shah, Z., Misra, R., Iqbal, N., & Tantry, J. 2025, Journal of High Energy Astrophysics, 45, 438, doi: 10.1016/j.jheap.2025.01.009 Aleksi´ c, J., Ansoldi, S., Antonelli, L. A., et al. 2015, A&A, 576, A126, doi: 10.1051/0004-6361/201424216
-
[7]
Arnaud, K. A. 1996, in Astronomical Society of the Pacific Conference Series, Vol. 101, Astronomical Data Analysis Software and Systems V, ed. G. H. Jacoby & J. Barnes, 17
1996
-
[8]
Arzoumanian, Z., Gendreau, K. C., Baker, C. L., et al. 2014, in Society of Photo-Optical Instrumentation Engineers (SPIE) Conference Series, Vol. 9144, Space Telescopes and Instrumentation 2014: Ultraviolet to Gamma Ray, ed. T. Takahashi, J.-W. A. den Herder, & M. Bautz, 914420, doi: 10.1117/12.2056811 Balokovi´ c, M., Paneque, D., Madejski, G., et al. 20...
Show all 80 references
-
[9]
R., & Robinson, D
Bevington, P. R., & Robinson, D. K. 1992, Data reduction and error analysis for the physical sciences
1992
-
[10]
2021, ApJ, 923, 7, doi: 10.3847/1538-4357/ac2819
Bhatta, G. 2021, ApJ, 923, 7, doi: 10.3847/1538-4357/ac2819
2021 doi
-
[11]
2025, Preprints, 2025050541, doi: 10.20944/preprints202505.0541.v1
Bhatta, G., & Bhatta, E. 2025, Preprints, 2025050541, doi: 10.20944/preprints202505.0541.v1
2025
-
[12]
2020, ApJ, 891, 120, doi: 10.3847/1538-4357/ab7455
Bhatta, G., & Dhital, N. 2020, ApJ, 891, 120, doi: 10.3847/1538-4357/ab7455
2020 doi
-
[13]
2018, A&A, 619, A93, doi: 10.1051/0004-6361/201833628
Bhatta, G., Mohorian, M., & Bilinsky, I. 2018, A&A, 619, A93, doi: 10.1051/0004-6361/201833628
2018 doi
-
[14]
2018, Galaxies, 6, 2, doi: 10.3390/galaxies6010002
Bhatta, G., & Webb, J. 2018, Galaxies, 6, 2, doi: 10.3390/galaxies6010002
2018 doi
-
[15]
2016, ApJ, 832, 47, doi: 10.3847/0004-637X/832/1/47
Bhatta, G., Zola, S., Stawarz, L., et al. 2016, ApJ, 832, 47, doi: 10.3847/0004-637X/832/1/47
2016 doi
-
[16]
C., Dhital, N., et al
Bhatta, G., Chaudhary, S. C., Dhital, N., et al. 2025, ApJ, 981, 118, doi: 10.3847/1538-4357/adb0c9
2025 doi
-
[17]
2020, ApJ, 897, 25, doi: 10.3847/1538-4357/ab91a8 B la˙ zejowski, M., Sikora, M., Moderski, R., & Madejski, G
Bhattacharyya, J., Ghosh, R., Chatterjee, R., & Das, N. 2020, ApJ, 897, 25, doi: 10.3847/1538-4357/ab91a8 B la˙ zejowski, M., Sikora, M., Moderski, R., & Madejski, G. M. 2000, ApJ, 545, 107, doi: 10.1086/317791 B la˙ zejowski, M., Blaylock, G., Bond, I. H., et al. 2005, ApJ, 6...
2020 doi
-
[18]
G., et al
Brinkmann, W., Sembay, S., Griffiths, R. G., et al. 2001, A&A, 365, L162, doi: 10.1051/0004-6361:20000084
2001 doi
-
[19]
2024, ApJS, 271, 25, doi: 10.3847/1538-4365/acfd29
Cao, Z., Aharonian, F., An, Q., et al. 2024, ApJS, 271, 25, doi: 10.3847/1538-4365/acfd29
2024 doi
-
[20]
I., Raiteri, C
Carnerero, M. I., Raiteri, C. M., Villata, M., et al. 2017, MNRAS, 472, 3789, doi: 10.1093/mnras/stx2185
2017 doi
-
[21]
M., Guo, D
Chen, X., Hu, S. M., Guo, D. F., & Du, J. J. 2014, Ap&SS, 349, 909, doi: 10.1007/s10509-013-1693-x
2014 doi
-
[22]
2025, MNRAS, 539, 3582, doi: 10.1093/mnras/staf666
Das, S., & Chatterjee, R. 2025, MNRAS, 539, 3582, doi: 10.1093/mnras/staf666
2025 doi
-
[23]
D., & Schlickeiser, R
Dermer, C. D., & Schlickeiser, R. 1993, ApJ, 416, 458, doi: 10.1086/173251 Di Gesu, L., Marshall, H. L., Ehlert, S. R., et al. 2023, Nature Astronomy, 7, 1245, doi: 10.1038/s41550-023-02032-7
1993 doi
-
[24]
P., et al
Dinesh, A., Bhatta, G., Adhikari, T. P., et al. 2023, ApJ, 955, 121, doi: 10.3847/1538-4357/acf316
2023 doi
-
[25]
2013, ApJ, 766, 16, doi: 10.1088/0004-637X/766/1/16
Edelson, R., Mushotzky, R., Vaughan, S., et al. 2013, ApJ, 766, 16, doi: 10.1088/0004-637X/766/1/16
2013 doi
-
[26]
J., Pounds, K., et al
Edelson, R., Turner, T. J., Pounds, K., et al. 2002, ApJ, 568, 610, doi: 10.1086/323779
2002 doi
-
[27]
A., Krolik, J
Edelson, R. A., Krolik, J. H., & Pike, G. F. 1990, ApJ, 359, 86, doi: 10.1086/169036
1990 doi
-
[28]
2014, A&A Rv, 22, 73, doi: 10.1007/s00159-014-0073-z
Falomo, R., Pian, E., & Treves, A. 2014, A&A Rv, 22, 73, doi: 10.1007/s00159-014-0073-z
2014 doi
-
[30]
2000, ApJ, 541, 153, doi: 10.1086/309422
Fossati, G., Celotti, A., Chiaberge, M., et al. 2000, ApJ, 541, 153, doi: 10.1086/309422
2000 doi
-
[31]
2017, ApJS, 232, 7, doi: 10.3847/1538-4365/aa82cc
Fraija, N., Ben ´ ıtez, E., Hiriart, D., et al. 2017, ApJS, 232, 7, doi: 10.3847/1538-4365/aa82cc
2017 doi
-
[32]
A., Akerlof, C
Gaidos, J. A., Akerlof, C. W., Biller, S., et al. 1996, Nature, 383, 319, doi: 10.1038/383319a0
1996 doi
-
[33]
C., Arzoumanian, Z., Adkins, P
Gendreau, K. C., Arzoumanian, Z., Adkins, P. W., et al. 2016, in Society of Photo-Optical Instrumentation Engineers (SPIE) Conference Series, Vol. 9905, Space Telescopes and Instrumentation 2016: Ultraviolet to Gamma Ray, ed. J.-W. A. den Herder, T. Takahashi, & M. Bautz, 9905...
2016 doi
-
[34]
1998, Monthly Notices of the Royal Astronomical Society, 301, 451, doi: 10.1046/j.1365-8711.1998.02032.x
Comastri, A. 1998, Monthly Notices of the Royal Astronomical Society, 301, 451, doi: 10.1046/j.1365-8711.1998.02032.x
1998
-
[35]
2004, A&A, 414, 1091, doi: 10.1051/0004-6361:20031684
Gleissner, T., Wilms, J., Pottschmidt, K., et al. 2004, A&A, 414, 1091, doi: 10.1051/0004-6361:20031684
2004 doi
-
[36]
2024, MNRAS, 529, 1450, doi: 10.1093/mnras/stae643
Gokus, A., Wilms, J., Kadler, M., et al. 2024, MNRAS, 529, 1450, doi: 10.1093/mnras/stae643
2024 doi
-
[37]
2018, ApJ, 863, 175, doi: 10.3847/1538-4357/aad2de
Goyal, A., Stawarz, L., Zola, S., et al. 2018, ApJ, 863, 175, doi: 10.3847/1538-4357/aad2de
2018 doi
-
[38]
M., Vaughan, S., & Uttley, P
Heil, L. M., Vaughan, S., & Uttley, P. 2012, MNRAS, 422, 2620, doi: 10.1111/j.1365-2966.2012.20824.x
2012
-
[39]
2021, MNRAS, 508, 5921, doi: 10.1093/mnras/stab2903
Hota, J., Shah, Z., Khatoon, R., et al. 2021, MNRAS, 508, 5921, doi: 10.1093/mnras/stab2903
2021 doi
-
[40]
S., Werner, N., Herder, J
Kaastra, J. S., Werner, N., Herder, J. W. A. d., et al. 2006, ApJ, 652, 189, doi: 10.1086/507835
2006 doi
-
[41]
2017, ApJ, 848, 103, doi: 10.3847/1538-4357/aa8ea6
Kapanadze, B., Dorner, D., Romano, P., et al. 2017, ApJ, 848, 103, doi: 10.3847/1538-4357/aa8ea6
2017 doi
-
[42]
2016, ApJ, 831, 102, doi: 10.3847/0004-637X/831/1/102
Kapanadze, B., Dorner, D., Vercellone, S., et al. 2016, ApJ, 831, 102, doi: 10.3847/0004-637X/831/1/102
2016 doi
-
[43]
2018, ApJ, 854, 66, doi: 10.3847/1538-4357/aaa75d
Kapanadze, B., Vercellone, S., Romano, P., et al. 2018, ApJ, 854, 66, doi: 10.3847/1538-4357/aaa75d
2018 doi
-
[44]
2022, MNRAS, 515, 3749, doi: 10.1093/mnras/stac1964
Khatoon, R., Shah, Z., Hota, J., et al. 2022, MNRAS, 515, 3749, doi: 10.1093/mnras/stac1964
2022 doi
-
[45]
E., Di Gesu, L., Liodakis, I., et al
Kim, D. E., Di Gesu, L., Liodakis, I., et al. 2024, A&A, 681, A12, doi: 10.1051/0004-6361/202347408
2024 doi
-
[46]
2022, MNRAS, 510, 3688, doi: 10.1093/mnras/stab3750
Kundu, A., Chatterjee, R., Mitra, K., & Mondal, S. 2022, MNRAS, 510, 3688, doi: 10.1093/mnras/stab3750
2022 doi
-
[47]
C., Bertsch, D
Lin, Y. C., Bertsch, D. L., Chiang, J., et al. 1992, ApJL, 401, L61, doi: 10.1086/186671 MAGIC Collaboration, Acciari, V. A., Ansoldi, S., et al. 2021, A&A, 655, A89, doi: 10.1051/0004-6361/202141004
1992 doi
-
[48]
2023, A&A, 669, A38, doi: 10.1051/0004-6361/202245123
Malacaria, C., Ducci, L., Falanga, M., et al. 2023, A&A, 669, A38, doi: 10.1051/0004-6361/202245123
2023 doi
-
[49]
1992, ApJL, 397, L5, doi: 10.1086/186531
Maraschi, L., Ghisellini, G., & Celotti, A. 1992, ApJL, 397, L5, doi: 10.1086/186531
1992 doi
-
[50]
G., Nalewajko, K., Bhatta, G., et al
Markowitz, A. G., Nalewajko, K., Bhatta, G., et al. 2022, MNRAS, 513, 1662, doi: 10.1093/mnras/stac917
2022 doi
-
[51]
2004a, A&A, 413, 489, doi: 10.1051/0004-6361:20031558
Massaro, E., Perri, M., Giommi, P., & Nesci, R. 2004a, A&A, 413, 489, doi: 10.1051/0004-6361:20031558
-
[52]
2004b, A&A, 422, 103, doi: 10.1051/0004-6361:20047148
Verrecchia, F. 2004b, A&A, 422, 103, doi: 10.1051/0004-6361:20047148
-
[53]
2006, A&A, 448, 861, doi: 10.1051/0004-6361:20053644
Tosti, G. 2006, A&A, 448, 861, doi: 10.1051/0004-6361:20053644
2006 doi
-
[54]
2008, A&A, 478, 395, doi: 10.1051/0004-6361:20078639
Giommi, P. 2008, A&A, 478, 395, doi: 10.1051/0004-6361:20078639
2008 doi
-
[55]
Mastichiadis, A., & Kirk, J. G. 2002, PASA, 19, 138, doi: 10.1071/AS01108
2002 doi
-
[56]
2007, A&A, 471, 439, doi: 10.1051/0004-6361:20077158
Mazin, D., & Raue, M. 2007, A&A, 471, 439, doi: 10.1051/0004-6361:20077158
2007 doi
-
[57]
P., et al
Mohorian, M., Bhatta, G., Adhikari, T. P., et al. 2022, MNRAS, 510, 5280, doi: 10.1093/mnras/stab3738
2022 doi
-
[58]
M., Mushotzky, R
Nandra, K., George, I. M., Mushotzky, R. F., Turner, T. J., & Yaqoob, T. 1997, ApJ, 476, 70, doi: 10.1086/303600
1997 doi
-
[59]
K., Bhatta, G., & Kizhakkekalam, S
Navaneeth, P. K., Bhatta, G., & Kizhakkekalam, S. 2025, MNRAS, 544, 2455, doi: 10.1093/mnras/staf1781
2025 doi
-
[60]
S., Bult, P., et al
Ng, M., Ray, P. S., Bult, P., et al. 2021, ApJL, 908, L15, doi: 10.3847/2041-8213/abe1b4
2021 doi
-
[61]
P., Gaur, H., Gupta, A
Noel, A. P., Gaur, H., Gupta, A. C., et al. 2022, ApJS, 262, 4, doi: 10.3847/1538-4365/ac7799
2022 doi
-
[62]
C., & Wiita, P
Pandey, A., Gupta, A. C., & Wiita, P. J. 2017, ApJ, 841, 123, doi: 10.3847/1538-4357/aa705e P´ anis, R., Bhatta, G., Adhikari, T. P., et al. 2025, ApJ, 989, 106, doi: 10.3847/1538-4357/ade9b1
2017 doi
-
[63]
M., Konopelko, A., et al
Petry, D., Bradbury, S. M., Konopelko, A., et al. 1996, A&A, 311, L13, doi: 10.48550/arXiv.astro-ph/9606159
1996 doi
-
[64]
W., Cawley, M
Punch, M., Akerlof, C. W., Cawley, M. F., et al. 1992, Nature, 358, 477, doi: 10.1038/358477a0
1992 doi
-
[65]
C., & Rees, M
Sikora, M., Begelman, M. C., & Rees, M. J. 1994, ApJ, 421, 153, doi: 10.1086/173633
1994 doi
-
[66]
A., & Vaidya, B
Ramamonjisoa, F. A., & Vaidya, B. 2019, Ap&SS, 364, 88, doi: 10.1007/s10509-019-3579-z
2019 doi
-
[67]
2014, ApJ, 786, 143, doi: 10.1088/0004-637X/786/2/143
Nalewajko, K. 2014, ApJ, 786, 143, doi: 10.1088/0004-637X/786/2/143
2014 doi
-
[68]
Tanihata, C., Kataoka, J., Takahashi, T., & Madejski, G. M. 2004, ApJ, 601, 759, doi: 10.1086/380779
2004 doi
-
[69]
1998, A&A, 339, 41
Tosti, G., Fiorucci, M., Luciani, M., et al. 1998, A&A, 339, 41
1998
-
[70]
2009, A&A, 501, 879, doi: 10.1051/0004-6361/200810865
Tosti, G. 2009, A&A, 501, 879, doi: 10.1051/0004-6361/200810865
2009 doi
-
[71]
Tramacere, A., Massaro, E., & Taylor, A. M. 2011, ApJ, 739, 66, doi: 10.1088/0004-637X/739/2/66 19
2011 doi
-
[72]
2007, A&A, 466, 521, doi: 10.1051/0004-6361:20066723
Tramacere, A., Massaro, F., & Cavaliere, A. 2007, A&A, 466, 521, doi: 10.1051/0004-6361:20066723
2007 doi
-
[73]
Ulrich, M.-H., Maraschi, L., & Urry, C. M. 1997, ARA&A, 35, 445, doi: 10.1146/annurev.astro.35.1.445
1997 doi
- [74]
-
[75]
Uttley, P., & McHardy, I. M. 2001, MNRAS, 323, L26, doi: 10.1046/j.1365-8711.2001.04496.x
2001
-
[76]
M., & Vaughan, S
Uttley, P., McHardy, I. M., & Vaughan, S. 2005, MNRAS, 359, 345, doi: 10.1111/j.1365-2966.2005.08886.x
2005
-
[77]
S., & Uttley, P
Vaughan, S., Edelson, R., Warwick, R. S., & Uttley, P. 2003, MNRAS, 345, 1271, doi: 10.1046/j.1365-2966.2003.07042.x
2003
-
[78]
2023, Research in Astronomy and Astrophysics, 23, 115011, doi: 10.1088/1674-4527/ace9b1
Wang, N., Yi, T.-F., Wang, L., et al. 2023, Research in Astronomy and Astrophysics, 23, 115011, doi: 10.1088/1674-4527/ace9b1
2023 doi
-
[79]
2022, Universe, 8, 578, doi: 10.3390/universe8110578
Wani, K., & Gaur, H. 2022, Universe, 8, 578, doi: 10.3390/universe8110578
2022 doi
-
[80]
Wani, K., Gaur, H., & Patil, M. K. 2023, ApJ, 951, 94, doi: 10.3847/1538-4357/acd186
2023 doi
-
[81]
2000, ApJ, 542, 914, doi: 10.1086/317016
Wilms, J., Allen, A., & McCray, R. 2000, ApJ, 542, 914, doi: 10.1086/317016
2000 doi
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