REVIEW 3 major objections 5 minor 63 references
Fast Transitions of X-ray Variability in the Neutron Star Low Mass X-ray Binary Cygnus X-2
T0 review · 3 major / 5 minor · reviewed 2026-08-15 · deepseek-v4-flash
Pith's one-line read A fast switch from a 50-Hz to a 5-Hz X-ray oscillation in Cygnus X-2 traces a change in the neutron star's boundary layer, not its accretion disc.
desk verdict Clean, new observation of a rapid HBO-to-NBO transition in Cyg X-2 with a solid spectral comparison, but the headline optical-depth drop rests on a fixed kTe=3 keV assumption that is not tested within the data. 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 object is the thermal Comptonization component (the `comptt` model) and its optical depth $\tau$ with the electron temperature fixed at $kT_e=3$ keV. The argument works by jointly fitting HBO and NBO spectra with `tbfeo*(diskbb+comptt+gaussian+gaussian)` and comparing $\tau$ between the two epochs; the disc parameters (inner temperature $kT_{\rm in}$, normalization) and seed photon temperature stay consistent, isolating $\tau$ as the changing quantity. The QPO rms spectra, converted to flux units, are then compared with the time-averaged model to show that both oscillations track the Comptonized component.
What would settle it
Take a new observation of a similar HBO-to-NBO transition with a broad-band instrument that can constrain $kT_e$ and $\tau$ simultaneously, for instance by extending the bandpass above 10 keV. If the data show $kT_e$ differing between the two epochs and no significant change in $\tau$, the paper's central inference fails.
Extended reading notes
Core claim
The central discovery is that the transition from a 50-Hz horizontal-branch oscillation to a 5-Hz normal-branch oscillation in Cygnus X-2 is accompanied by a significant decrease in the optical depth of the Comptonization component, while the parameters of the accretion disc remain unchanged. In Obs #1 the optical depth drops from $\tau=4.22\pm0.04$ in the HBO epoch to $\tau=3.72\pm0.06$ in the NBO epoch, and in Obs #2 from $4.37\pm0.05$ to $3.80\pm0.06$. This is measured with the electron temperature fixed at $kT_e = 3$ keV, because the model cannot constrain temperature and optical depth simultaneously. The authors attribute the drop to expansion of the boundary layer or spreading layer, and note that the fractional-rms spectra of both QPOs resemble the Comptonization component, identifying the BL/SL as the driver of the variability.
Load-bearing premise
The entire interpretation hinges on holding the electron temperature fixed at 3 keV; if the temperature actually changed between the two epochs, the measured drop in optical depth could shrink, vanish, or reverse.
Editorial extensions
If this is right
- The rapid HBO-to-NBO transition is a change in the Comptonizing boundary/spreading layer, not a change in the accretion disc.
- Both the 50-Hz HBO and the 5-Hz NBO originate in the boundary/spreading layer, because their rms spectra match the shape of the Comptonization component.
- The 5-Hz NBO cannot be explained by Lense-Thirring precession of a hot inner flow: the required truncation radius of about 20 gravitational radii contradicts the measured inner disc radius of about 6.5 $R_g$.
- The drop in optical depth together with increased flux implies the BL/SL expanded as the source moved from the horizontal to the normal branch.
- The NBO/HBO spectral ratio differs markedly from the type-B/type-C ratio in black-hole binaries, indicating the accretion-flow geometries in the two classes are not identical.
Reading between the lines
- A testable consequence the authors do not pursue: if the BL/SL expands, the polarization degree and angle of the Comptonized component, measurable by IXPE-class instruments, should change across the transition.
- The same spectral-comparison technique applied to other Z sources could show whether a drop in Comptonization optical depth is a general signature of HBO-to-NBO transitions or specific to Cygnus X-2.
- The authors' assumption that $kT_e$ stays at 3 keV could be checked with simultaneous NuSTAR and NICER coverage of a transition; if the temperature varies, the optical-depth decrease may need to be reinterpreted as a temperature change instead.
Signed reviews
Editorial analysis
A structured set of objections, weighed in public.
Referee Report
Summary. The paper reports the detection of rapid transitions from a narrow ~50-Hz horizontal-branch oscillation (HBO) to a broad ~5-Hz normal-branch oscillation (NBO) in two NICER observations of Cyg X-2. The transitions are accompanied by an increase in source flux and a decrease in spectral hardness. The authors extract spectra from the orbits before and after each transition and model them with tbfeo*(diskbb+comptt+two gaussians). They find that the disc parameters do not change significantly, while the optical depth of the Comptonization component decreases from about 4.2-4.4 to about 3.7-3.8, under the assumption that the electron temperature is fixed at 3 keV. They also construct rms spectra and QPO spectra, concluding that the boundary layer/spreading layer drives the variability, and they discuss possible physical origins of the HBO and NBO.
Significance. If the optical-depth decrease is robust, the paper provides a valuable and relatively rare spectral-timing characterization of a fast HBO-to-NBO transition in a Z source, including soft X-ray coverage below 2 keV. The timing analysis is careful, the two observations give consistent results, and the use of MCMC parameter distributions is a strength. The manuscript is also honest about several limitations, including the inability to constrain kTe and tau simultaneously and the statement that the data do not strongly constrain the QPO mechanism. However, the headline spectral result and the associated physical interpretation are currently conditional on an untested degeneracy between electron temperature and optical depth, so the central claim is not yet fully secured.
major comments (3)
- [Section 3.3, Table 3] The central quantitative claim that tau decreases from the HBO epoch to the NBO epoch is obtained with kTe fixed at 3 keV, and the authors state that kTe and tau cannot be constrained simultaneously. Because thermal Comptonization depends on the product of kTe and tau through the Compton y-parameter, a modest change in kTe between the two epochs could reduce, remove, or even reverse the reported Delta-tau. The support cited from Ludlam et al. (2022) comes from different observations with a different instrument combination and does not test this assumption for the present data. I request an explicit robustness test, for example fitting with kTe free or computing Delta-chi-squared contours in the (kTe, tau) plane for both the HBO and NBO spectra, and an estimate of how much kTe would have to differ between the two epochs to nullify the claimed tau decrease. Until this is done, the interpretation in Section 4.2 that the BL/SL expanded should be presented as explicitly conditional on the fixed-temperature assumption.
- [Section 3.3, Figure 6] The statement that the HBO and NBO QPO spectra resemble the Comptonization component, and therefore that the BL/SL drives the variability, is based on visual comparison. The footnote correctly notes that the rms spectrum of a variable Comptonization component is not the same as its time-averaged spectrum, so the comparison in Figure 6 is not a direct test. A quantitative comparison, for example with a time-dependent Comptonization model such as vkompth or at least a residual/chi-square analysis of the QPO spectra against the model components, is needed before this attribution can be treated as more than suggestive.
- [Abstract, Section 3.2, Figure 4] The abstract states that the rms spectra for both the HBO and NBO are hard, suggesting that the boundary layer or spreading layer is driving the variability. In Figure 4, however, the NBO fractional rms peaks near 1 keV and decreases toward higher energies, which does not match the usual meaning of a hard rms spectrum. Please define what is meant by 'hard' in this context, and either revise the statement or check whether the conclusion that both QPOs originate in the BL/SL is affected by the difference in the shapes of the two rms spectra.
minor comments (5)
- [Section 3.1] The term 'fast transition' is used in the title and abstract, but the QPO switch is observed only between consecutive orbits separated by data gaps; the authors note that the transition timescale can only be constrained to be less than about one hour. Please consider softening the wording in the abstract and introduction to avoid overstating the time resolution of the transition.
- [Section 3.1] The text twice refers to a 'Lorenzian function'; the correct spelling is 'Lorentzian function'.
- [Section 3.1, Table 2] The QPO significance is defined in a footnote as the ratio of the integrated Lorentzian power to the negative 1-sigma error on that integral. This is an unusual definition; please clarify whether this corresponds to a standard detection significance and state how the error was propagated.
- [Section 3.2, Figure 4] The NBO rms spectrum is computed in five energy bins while the HBO rms spectrum is computed in only three bins. Please state explicitly whether this choice is driven by the available statistics and, if so, give the number of source counts or the uncertainties used for each bin.
- [Section 4.2] When the paper later refers to the 'significant decrease in the optical depth' without repeating the fixed-kTe caveat, the reader could lose track of the conditional nature of the result. I suggest repeating the qualifier 'assuming a fixed electron temperature' at each occurrence where the tau decrease is used as evidence for BL/SL expansion.
Circularity Check
No significant circularity: the optical-depth decrease is a fitted parameter under a stated assumption, supported by external references, not a prediction derived from its own inputs.
full rationale
The paper's central quantitative claim is that the comptt optical depth decreases between HBO and NBO epochs when the electron temperature is fixed at 3 keV. This is a direct spectral-fitting result obtained from the NICER data with the model tbfeo*(diskbb+comptt+gaussian+gaussian), not a quantity derived from the assumption itself. The fixed kTe=3 keV choice is stated explicitly in Section 3.3 and is justified by external measurements (Di Salvo et al. 2002; Done et al. 2002; Farinelli et al. 2009; Ludlam et al. 2022); none of these are self-citations of the present authors. The paper does not call the fitted tau change a prediction, and it flags the conditional nature of the result ('assuming a fixed electron temperature'). The interpretation that the boundary/spreading layer expanded is explicitly hedged ('may be attributed') and is not a derivation forced by construction. Self-citations appear in the discussion of QPO models (Karpouzas et al. 2020; Bellavita et al. 2022; Mendez et al. 2022; Ma et al. 2023), but they are not load-bearing for the spectral analysis; the paper even states in Section 4.3 that its NICER spectral-timing results 'do not provide strong constraints on the physical origin of the QPOs.' The main fragility, namely that a varying kTe could alter or erase the tau change, is a modeling uncertainty rather than a circular step, because the assumption is disclosed and the fitted value is not defined in terms of the conclusion.
Assumptions & free parameters
free parameters (3)
- kTe (comptt electron temperature) =
3 keV (fixed by hand)
- τ (comptt optical depth) =
Obs#1: 4.22±0.04 (HBO) to 3.72±0.06 (NBO); Obs#2: 4.37±0.05 to 3.80±0.06
- Fe K line energy =
6.4 keV (fixed)
assumptions (4)
- ad hoc to paper Electron temperature kTe of the Comptonizing component is fixed to 3 keV and is identical in the HBO and NBO spectra.
- domain assumption The X-ray spectrum is adequately described by tbfeo*(diskbb+comptt+gaussian+gaussian).
- domain assumption The 3C50 background model and the NICER calibration files accurately represent the background and response.
- domain assumption Lorentzian functions correctly isolate the QPO peaks and broadband noise in the power spectra.
Cite this review
Pith. "Pith review of Fast Transitions of X-ray Variability in the Neutron Star Low Mass X-ray Binary Cygnus X-2." pith.science (2026). https://pith.science/paper/XDTHMOAX
@misc{pith2026250613503,
author = {Pith},
title = {Pith review of: Fast Transitions of X-ray Variability in the Neutron Star Low Mass X-ray Binary Cygnus X-2},
year = {2026},
howpublished = {\url{https://pith.science/paper/XDTHMOAX}},
note = {Machine review of arXiv:2506.13503}
}
read the original abstract
We present a spectral-timing analysis of two NICER observations of the weakly magnetized neutron star low-mass X-ray binary Cygnus X-2. During these observations, we detect a rapid transition from a narrow 50-Hz horizontal-branch oscillation to a broad 5-Hz normal-branch oscillation, accompanied by an increase in source flux and a decrease in spectral hardness. Thanks to the large effective area of NICER, we are able to conduct a detailed comparison of the spectra associated with different types of quasi-periodic oscillations (QPOs) on short timescales. By fitting the spectra with a model that includes a disc and Comptonization components plus two emission lines, we find that the parameters of the disc component do not change significantly during the transition. However, assuming a fixed electron temperature, the optical depth of the Comptonization component decreases significantly. This drop in optical depth may be attributed to the expansion of the boundary layer or spreading layer.In addition, we find that the rms spectra for both the HBO and NBO are hard, suggesting that the boundary layer or spreading layer is driving the variability. We discuss the potential physical origin of the different types of QPOs.
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Works this paper leans on
-
[1]
A., Hasinger, G., Shaham, J., & Yancopoulos, S
Alpar, M. A., Hasinger, G., Shaham, J., & Yancopoulos, S. 1992, A&A, 257, 627
work page 1992
-
[2]
2012, ApJL, 759, L20, doi: 10.1088/2041-8205/759/1/L20
Altamirano, D., Ingram, A., van der Klis, M., et al. 2012, ApJL, 759, L20, doi: 10.1088/2041-8205/759/1/L20
-
[3]
2008, ApJL, 673, L35, doi: 10.1086/527355
Cumming, A. 2008, ApJL, 673, L35, doi: 10.1086/527355
doi:10.1086/527355 2008
-
[4]
2023, in Handbook of X-ray and Gamma-ray Astrophysics, 120, doi: 10.1007/978-981-16-4544-0 94-1
Bahramian, A., & Degenaar, N. 2023, in Handbook of X-ray and Gamma-ray Astrophysics, 120, doi: 10.1007/978-981-16-4544-0 94-1
-
[5]
2022, MNRAS, 515, 2099, doi: 10.1093/mnras/stac1922
Bellavita, C., Garc´ ıa, F., M´ endez, M., & Karpouzas, K. 2022, MNRAS, 515, 2099, doi: 10.1093/mnras/stac1922
-
[6]
1990, A&A, 227, L33
Belloni, T., & Hasinger, G. 1990, A&A, 227, L33
1990
-
[7]
2021, MNRAS, 504, 444, doi: 10.1093/mnras/stab864
Carotenuto, F., Corbel, S., Tremou, E., et al. 2021, MNRAS, 504, 444, doi: 10.1093/mnras/stab864
-
[8]
1998, ApJL, 493, L39, doi: 10.1086/311124
Casares, J., Charles, P., & Kuulkers, E. 1998, ApJL, 493, L39, doi: 10.1086/311124
Show all 63 references
-
[10]
2005, ApJ, 629, 403, doi: 10.1086/431174
Casella, P., Belloni, T., & Stella, L. 2005, ApJ, 629, 403, doi: 10.1086/431174
2005 doi
-
[11]
2022, MNRAS, 512, L11, doi: 10.1093/mnrasl/slac014 Di Salvo, T., Farinelli, R., Burderi, L., et al
Chhangte, V., Roy, J., Misra, R., & Zadeng, L. 2022, MNRAS, 512, L11, doi: 10.1093/mnrasl/slac014 Di Salvo, T., Farinelli, R., Burderi, L., et al. 2002, A&A, 386, 535, doi: 10.1051/0004-6361:20020238
2022 doi
-
[12]
T., & Miller-Jones, J
Ding, H., Deller, A. T., & Miller-Jones, J. C. A. 2021, PASA, 38, e048, doi: 10.1017/pasa.2021.37
2021 doi
-
[13]
T., & Smith, D
Done, C., ˙Zycki, P. T., & Smith, D. A. 2002, MNRAS, 331, 453, doi: 10.1046/j.1365-8711.2002.05195.x du Buisson, L., Motta, S., & Fender, R. 2021, MNRAS, 502, 5472, doi: 10.1093/mnras/stab422
2002
-
[14]
2009, A&A, 498, 509, doi: 10.1051/0004-6361/200810422
Farinelli, R., Paizis, A., Landi, R., & Titarchuk, L. 2009, A&A, 498, 509, doi: 10.1051/0004-6361/200810422
2009 doi
-
[15]
2023, MNRAS, 519, 3681, doi: 10.1093/mnras/stac3726
Farinelli, R., Fabiani, S., Poutanen, J., et al. 2023, MNRAS, 519, 3681, doi: 10.1093/mnras/stac3726
2023 doi
-
[16]
P., Homan, J., & Belloni, T
Fender, R. P., Homan, J., & Belloni, T. M. 2009, MNRAS, 396, 1370, doi: 10.1111/j.1365-2966.2009.14841.x
2009
-
[17]
K., & Miller, G
Fortner, B., Lamb, F. K., & Miller, G. S. 1989, Nature, 342, 775, doi: 10.1038/342775a0
1989 doi
-
[18]
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, Proc. SPIE, 99051H, doi: 10.1117/12.2231304
2016 doi
-
[19]
1989, A&A, 225, 79
Hasinger, G., & van der Klis, M. 1989, A&A, 225, 79
1989
-
[20]
1990, A&A, 235, 131
Mitsuda, K. 1990, A&A, 235, 131
1990
-
[21]
G., et al
Homan, J., van der Klis, M., Jonker, P. G., et al. 2002, ApJ, 568, 878, doi: 10.1086/339057
2002 doi
-
[22]
2001, ApJS, 132, 377, doi: 10.1086/318954
Homan, J., Wijnands, R., van der Klis, M., et al. 2001, ApJS, 132, 377, doi: 10.1086/318954
2001 doi
-
[23]
2007, ApJ, 656, 420, doi: 10.1086/510447
Homan, J., van der Klis, M., Wijnands, R., et al. 2007, ApJ, 656, 420, doi: 10.1086/510447
2007 doi
-
[24]
E., et al
Homan, J., Bright, J., Motta, S. E., et al. 2020, ApJL, 891, L29, doi: 10.3847/2041-8213/ab7932
2020 doi
-
[25]
2010, MNRAS, 405, 2447, doi: 10.1111/j.1365-2966.2010.16614.x
Ingram, A., & Done, C. 2010, MNRAS, 405, 2447, doi: 10.1111/j.1365-2966.2010.16614.x
2010
-
[26]
R., & Motta, S
Ingram, A. R., & Motta, S. E. 2019, NewAR, 85, 101524, doi: 10.1016/j.newar.2020.101524
2019
- [27]
-
[28]
M., Qu, J
Jia, S. M., Qu, J. L., Lu, F. J., et al. 2023, MNRAS, 521, 4792, doi: 10.1093/mnras/stad876 11 Tin = 0 .59+0.02 −0.02 3000 4000 Dnorm Dnorm = 3689 .82+353.42 −308.57 0.84 0.88 T0 T0 = 0 .86+0.01 −0.01 4.0 4.2 τ τ = 4 .21+0.04 −0.05 0.56 0.60 Tin 1.80 1.86 Cnorm 3000 4000 Dnorm...
2023 doi
-
[29]
S., & Bleeker, J
Kaastra, J. S., & Bleeker, J. A. M. 2016, A&A, 587, A151, doi: 10.1051/0004-6361/201527395
2016 doi
-
[30]
M., et al
Karpouzas, K., M´ endez, M., Ribeiro, E. M., et al. 2020, MNRAS, 492, 1399, doi: 10.1093/mnras/stz3502
2020 doi
-
[31]
2008, ApJ, 675, 1407, doi: 10.1086/525843
Klein-Wolt, M., & van der Klis, M. 2008, ApJ, 675, 1407, doi: 10.1086/525843
2008 doi
-
[32]
X., Huang, Y., Bu, Q
Liu, H. X., Huang, Y., Bu, Q. C., et al. 2022, ApJ, 938, 108, doi: 10.3847/1538-4357/ac88c6
2022 doi
-
[33]
M., Cackett, E
Ludlam, R. M., Cackett, E. M., Garc´ ıa, J. A., et al. 2022, ApJ, 927, 112, doi: 10.3847/1538-4357/ac5028
2022 doi
-
[34]
2015, MNRAS, 454, 541, doi: 10.1093/mnras/stv1971
Lyu, M., M´ endez, M., Zhang, G., & Keek, L. 2015, MNRAS, 454, 541, doi: 10.1093/mnras/stv1971
2015 doi
-
[35]
2023, MNRAS, 525, 854, doi: 10.1093/mnras/stad2284
Ma, R., M´ endez, M., Garc´ ıa, F., et al. 2023, MNRAS, 525, 854, doi: 10.1093/mnras/stad2284
2023 doi
-
[36]
2021, Nature Astronomy, 5, 94, doi: 10.1038/s41550-020-1192-2
Ma, X., Tao, L., Zhang, S.-N., et al. 2021, Nature Astronomy, 5, 94, doi: 10.1038/s41550-020-1192-2
2021 doi
-
[37]
C., Altamirano, D., Bult, P., et al
Mancuso, G. C., Altamirano, D., Bult, P., et al. 2023, MNRAS, 521, 5616, doi: 10.1093/mnras/stad949
2023 doi
-
[38]
A., & Wilms, J
Markoff, S., Nowak, M. A., & Wilms, J. 2005, ApJ, 635, 1203, doi: 10.1086/497628
2005 doi
-
[39]
Mastichiadis, A., Petropoulou, M., & Kylafis, N. D. 2022, A&A, 662, A118, doi: 10.1051/0004-6361/202243397 M´ endez, M., & Belloni, T. M. 2021, in Astrophysics and Space Science Library, Vol. 461, Timing Neutron Stars:
2022 doi
-
[40]
M´ endez, & C
Belloni, M. M´ endez, & C. Zhang, 263–331, doi: 10.1007/978-3-662-62110-3 6 M´ endez, M., Karpouzas, K., Garc´ ıa, F., et al. 2022, Nature Astronomy, 6, 577, doi: 10.1038/s41550-022-01617-y
2022 doi
-
[41]
Migliari, S., & Fender, R. P. 2006, MNRAS, 366, 79, doi: 10.1111/j.1365-2966.2005.09777.x
2006
-
[42]
1984, PASJ, 36, 741
Mitsuda, K., Inoue, H., Koyama, K., et al. 1984, PASJ, 36, 741
1984
-
[43]
2011, MNRAS, 418, 2292, doi: 10.1111/j.1365-2966.2011.19566.x
Homan, J. 2011, MNRAS, 418, 2292, doi: 10.1111/j.1365-2966.2011.19566.x
2011
-
[44]
E., Rouco Escorial, A., Kuulkers, E., Mu˜ noz-Darias, T., & Sanna, A
Motta, S. E., Rouco Escorial, A., Kuulkers, E., Mu˜ noz-Darias, T., & Sanna, A. 2017, MNRAS, 468, 2311, doi: 10.1093/mnras/stx570 Mu˜ noz-Darias, T., Fender, R. P., Motta, S. E., & Belloni, T. M. 2014, MNRAS, 443, 3270, doi: 10.1093/mnras/stu1334
2017 doi
-
[45]
A., & Kuulkers, E
Orosz, J. A., & Kuulkers, E. 1999, MNRAS, 305, 132, doi: 10.1046/j.1365-8711.1999.t01-1-02420.x
1999
-
[46]
2001, ApJ, 547, 355, doi: 10.1086/318336
Popham, R., & Sunyaev, R. 2001, ApJ, 547, 355, doi: 10.1086/318336
2001 doi
-
[47]
A., Loewenstein, M., Steiner, J
Remillard, R. A., Loewenstein, M., Steiner, J. F., et al. 2022, AJ, 163, 130, doi: 10.3847/1538-3881/ac4ae6
2022 doi
-
[48]
2001, A&A, 372, 138, doi: 10.1051/0004-6361:20010434
Revnivtsev, M., Churazov, E., Gilfanov, M., & Sunyaev, R. 2001, A&A, 372, 138, doi: 10.1051/0004-6361:20010434
2001 doi
-
[49]
D., Tetarenko, A
Russell, T. D., Tetarenko, A. J., Miller-Jones, J. C. A., et al. 2019, ApJ, 883, 198, doi: 10.3847/1538-4357/ab3d36
2019 doi
-
[50]
I., & Sunyaev, R
Shakura, N. I., & Sunyaev, R. A. 1973, A&A, 24, 337
1973
-
[51]
2008, MNRAS, 383, 1089, doi: 10.1111/j.1365-2966.2007.12596.x
Soleri, P., Belloni, T., & Casella, P. 2008, MNRAS, 383, 1089, doi: 10.1111/j.1365-2966.2007.12596.x
2008
-
[52]
Sriram, K., Harikrishna, S., & Choi, C. S. 2021, ApJ, 911, 127, doi: 10.3847/1538-4357/abe9ae
2021 doi
-
[53]
1998, ApJL, 492, L59, doi: 10.1086/311075
Stella, L., & Vietri, M. 1998, ApJL, 492, L59, doi: 10.1086/311075
1998 doi
-
[54]
M., Altamirano, D., Cackett, E
Sudha, M., Ludlam, R. M., Altamirano, D., Cackett, E. M., & Hare, J. 2025, ApJ, 978, 75, doi: 10.3847/1538-4357/ad9588
2025 doi
-
[55]
1994, ApJ, 434, 570, doi: 10.1086/174760
Titarchuk, L. 1994, ApJ, 434, 570, doi: 10.1086/174760
1994 doi
-
[56]
Fomalont, E. B. 2001, ApJL, 555, L45, doi: 10.1086/323160 van der Klis, M. 1989, ARA&A, 27, 517, doi: 10.1146/annurev.aa.27.090189.002505
2001
-
[57]
A., Ferland, G
Verner, D. A., Ferland, G. J., Korista, K. T., & Yakovlev, D. G. 1996, ApJ, 465, 487, doi: 10.1086/177435
1996 doi
-
[58]
2021, ApJL, 910, L3, doi: 10.3847/2041-8213/abec79
Wang, J., Mastroserio, G., Kara, E., et al. 2021, ApJL, 910, L3, doi: 10.3847/2041-8213/abec79
2021 doi
-
[59]
2001, MNRAS, 321, 537, doi: 10.1046/j.1365-8711.2001.04058.x
Wijnands, R., & van der Klis, M. 2001, MNRAS, 321, 537, doi: 10.1046/j.1365-8711.2001.04058.x
2001
-
[60]
1999, ApJL, 512, L39, doi: 10.1086/311872
Wijnands, R., van der Klis, M., & Rijkhorst, E.-J. 1999, ApJL, 512, L39, doi: 10.1086/311872
1999 doi
-
[61]
2000, ApJ, 542, 914, doi: 10.1086/317016
Wilms, J., Allen, A., & McCray, R. 2000, ApJ, 542, 914, doi: 10.1086/317016
2000 doi
-
[62]
N., et al
Yang, Z.-X., Zhang, L., Zhang, S. N., et al. 2023, MNRAS, 521, 3570, doi: 10.1093/mnras/stad795
2023 doi
-
[63]
2021, MNRAS, 505, 3823, doi: 10.1093/mnras/stab1553
Zhang, L., Altamirano, D., Uttley, P., et al. 2021, MNRAS, 505, 3823, doi: 10.1093/mnras/stab1553
2021 doi
-
[64]
2019, Science China Physics, Mechanics, and Astronomy, 62, 29502, doi: 10.1007/s11433-018-9309-2
Zhang, S., Santangelo, A., Feroci, M., et al. 2019, Science China Physics, Mechanics, and Astronomy, 62, 29502, doi: 10.1007/s11433-018-9309-2
2019 doi
Reviewed August 15, 2026 · model on record in the stance chip above.
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