REVIEW 3 major objections 5 minor 103 references
25 years of XMM-Newton observations of the Sgr A complex: 3D distribution and internal structure of the clouds
T0 review · 3 major / 5 minor · reviewed 2026-08-10 · deepseek-v4-flash
Pith's one-line read The paper argues that a single, roughly 200-year-old flare of Sgr A* explains 25 years of X-ray flickering in the Sgr A molecular complex, placing the clouds about 25 parsecs behind the black hole along the line of sight.
desk verdict Valuable 25-year X-ray monitoring, but the 3D geometry rests on an internal unit/age inconsistency that needs fixing before the headline claim can be trusted. 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 central object is the echo paraboloid: for a short flare at Sgr A*, the points whose scattered photons reach Earth at a given time lie on a paraboloid with the black hole at its focus, $z = \frac{ct}{2} - \frac{(R/c)^2}{2t}$, where $z$ is the line-of-sight distance and $R$ the projected distance. A 200-year-old flare means this surface creeps along the line of sight at about 0.2 pc per year, so each yearly X-ray map is effectively a thin slice of the cloud distribution. The second piece is the optically thin scattering relation, which converts the Fe K$\alpha$ surface rate into molecular hydrogen density, assuming a 1.5-year flare, a luminosity of $10^{39}$ erg s$^{-1}$, solar abundances, and that all hydrogen is molecular. Together these convert 16 yearly maps into a 3D density reconstruction and its probability density function.
What would settle it
A decisive test is the predicted fading of the Bridge: the single-flare scenario requires the already-peaked B.a region to keep dropping below the flux level measured in 2000-2001 over the next few years, while a plateau would indicate that the residual emission is not from the 200-year-old flare. A second, more direct test is an independent measurement of the flare age, for instance an IXPE polarization observation of MC1 or G0.11-0.11 whose inferred line-of-sight positions must agree with the roughly 25 pc geometry; a disagreement would falsify the single-flare reconstruction within the current flare-age uncertainty of 205 +50/−30 years.
Extended reading notes
Core claim
Under the assumption that one short flare illuminated the whole complex, the paper finds that the Sgr A complex occupies a compact band about 25 pc behind Sgr A*, with different clouds separated by only a few parsecs along the line of sight. The 25-year light curves also resolve the main objection to the single-flare scenario: earlier, shorter monitoring saw the densest cloud (the Bridge) no brighter than its neighbors, which a single flare could not explain; in the extended dataset the Bridge has become the brightest cloud, as the densest material should be. The density probability distribution derived from the echo slices is approximately log-normal with width $\sigma_s \simeq 0.7$, matching the earlier Chandra result, but a skew-normal fit is clearly preferred, indicating an excess at the high-density end. The paper also shows that a two-flare version with flares separated by at least 30 years and comparable energies fits equally well, and in either case the complex lies inside the nuclear molecular ring.
Load-bearing premise
The reconstruction and the density PDF assume that the Fe Kalpha surface rate is a direct, optically thin, linear measure of gas density in a thin illuminated slice, and that the IXPE-based flare age of about 200 years is correct; the paper itself notes that dense knots may break the linear relation, and a flare age of 100 or 400 years would move the inferred distance of the complex substantially.
Editorial extensions
If this is right
- The single-flare scenario, previously doubted because the densest cloud was not the brightest, survives 25 years of monitoring: the Bridge has become the brightest cloud, as the densest knots should be.
- The complex is located about 25 pc behind Sgr A* and spans 10-15 pc along the line of sight, placing it well inside the 100-200 pc nuclear molecular ring; the authors suggest it may be gas drifting inward from the ring.
- The molecular density PDF is roughly log-normal with $\sigma_s \simeq 0.7$, consistent with supersonic turbulence, and the skew towards high density may trace the onset of self-gravitating cores.
- The non-detection of fluorescence toward the 50 and 20 km/s clouds implies Sgr A* had no flare above about $10^{36}$ erg/s in the past century.
- If two flares are responsible, they must be separated by at least 30 years and have comparable energies; in that scenario Sgr B2 should begin to be illuminated by the second, more recent wavefront roughly 30 years from now.
Reading between the lines
- An independent anchor for the flare age, such as an IXPE-type polarization measurement of MC1 or G0.11-0.11, would check the single-flare geometry without relying on the Bridge alone; a mismatch would force a revised age or the two-flare picture.
- The predicted fading of the Bridge's B.a region below its early-2000s flux level over the next few years is a sharp test; a plateau would indicate that the residual emission is not powered by the 200-year-old flare.
- The echo-slicing technique could be extended to other complexes as their wavefronts arrive; comparing the reconstructed 3D positions of Sgr B2 and Sgr C against kinematic streamer models would test whether the inferred geometry is consistent with bar-driven gas flow.
- The high-density skew in the density PDF, if confirmed by deeper observations, would link the Sgr A complex to the regime where star formation begins; comparing $\sigma_s \simeq 0.7$ with measured Mach numbers in the Central Molecular Zone would indicate whether the turbulence is predominantly solenoidal or compressive.
Editorial analysis
A structured set of objections, weighed in public.
Referee Report
Summary. The paper analyzes the full 25-year XMM-Newton dataset (2000–2024) of the Sgr A molecular complex. It constructs Fe Kalpha maps for 16 epochs, isolates the variable component through a minimum-map subtraction, and uses light curves from spectral fits of selected regions. Anchoring the geometry to the IXPE polarization measurement that places the Bridge 26 pc behind Sgr A*, the paper assumes a single short flare and uses the echo parabola equation to reconstruct the line-of-sight positions of the clouds, finding the complex at about 25 pc behind Sgr A* with the illuminated region spanning 10–15 pc. It then derives the density PDF of the molecular gas, which is roughly log-normal with sigma_s ~ 0.7 and a possible high-density excess, and discusses a two-flare alternative. The paper concludes that both a single flare and two well-separated flares remain viable, that earlier concerns about the single-flare scenario are resolved, and that the complex likely lies inside the 100–200 pc nuclear molecular ring.
Significance. If the reconstruction is correct, this is the most complete 3D map of the Sgr A complex to date, with parsec-scale line-of-sight resolution enabled by the light-echo technique. The paper significantly extends the monitoring baseline, confirms and extends the superluminal propagation in the Bridge, and strengthens the single-flare interpretation by resolving the earlier tension that dense clouds were not the brightest X-ray emitters. The derived density PDF is an independent confirmation of the Chandra result using a longer dataset. The paper's strengths include the systematic handling of the background (two independent models, EPIC-mos checks), the explicit robustness tests of the PDF truncation, and the transparent presentation of the assumptions behind Eq. (3). The results are falsifiable: future monitoring should show the predicted fading of the Bridge and the delayed illumination of Sgr B2 in the two-flare scenario.
major comments (3)
- [Section 4, Table 1] The IXPE polarization degree measured by Marin et al. (2023) constrains the absolute line-of-sight offset |z| of the Bridge, but the sign of z is not determined by the polarization alone. The paper assumes the positive-z branch (Bridge 26 pc behind Sgr A*), and this assumption fixes the entire single-flare reconstruction. The negative branch (Bridge ~26 pc in front of Sgr A*) would imply an echo delay of only ~18 years for the Bridge, which is difficult to reconcile with the fact that the Bridge was already bright in 2007–2009 while MC1 and MC2 were bright in 2000; however, this exclusion argument is not given in the manuscript. The authors should either explain the branch selection explicitly (e.g., by using the observed propagation history or by referring to a specific argument in Marin et al.) or discuss the degeneracy and its effect on all derived distances.
- [Section 4.1, Table 1, Fig. 9] The quoted line-of-sight distances (e.g., MC1 = 27.4 pc, Bridge a = 25.7 pc, the global ~25 pc offset, and the 10–15 pc illuminated extent) are computed using a point value for the flare age. The text acknowledges in Sect. 4.1 that a 100-year-old flare would place the clouds at 0–15 pc and a 400-year-old flare at ~60 pc, but the 1-sigma range from IXPE (205+50-30 years) is not propagated into Table 1 or the headline numbers. The authors should at least provide the resulting uncertainty on the reconstructed positions, or a table of the extreme cases within the 1-sigma range, since the paper explicitly claims specific distances in the abstract and conclusions.
- [Section 5, Eq. (3)] The density PDF is derived assuming optically thin scattering, so that the Fe Kalpha surface rate is a direct linear probe of n_H2 (Eq. 3). The paper itself states in Sect. 5 that dense regions can be optically thick and that the reflected signal does not scale linearly with the illuminating flux in the densest parts of each cloud. This directly affects the claimed high-density excess in the PDF, because optically thick pixels would appear at artificially low or saturated densities. The authors should quantify the column density at which optical depth becomes order unity for the Fe Kalpha line and the scattered continuum, and either restrict the PDF to the optically thin regime or model the opacity effect and show that the high-density tail is not an artifact.
minor comments (5)
- [Section 2, after Eq. (1)] The sentence contains a typographical error: "the range,." has a comma before the period.
- [Eq. (2)] The typeset form of Eq. (2) is garbled in the manuscript (it appears as "ct2- (R/c)2 2t"); please ensure the standard form z = ct/2 - R^2/(2ct) is printed correctly and that the units of c and t are specified (pc per year and years, respectively).
- [Section 4.1 and Fig. 9 caption] The text uses "tflare = 200 yrs old" in Fig. 9 while the IXPE value quoted in Sect. 4 is 205+50-30 years; please use a consistent central value and specify the reference epoch (e.g., 2022 for the IXPE observation) so that the parabola positions for the other years are reproducible.
- [Table 1] The column "Estimated LOS distance" has no uncertainties; even if the main text discusses sensitivity to the flare age, a note or a second table reporting the range induced by the 1-sigma age uncertainty would make the table self-contained.
- [Section 5] The text says the analysis adds "15 more slices" compared to Churazov et al. (2017b), but the paper uses 16 maps; please clarify the arithmetic (e.g., 15 additional epochs beyond the single Chandra epoch).
Circularity Check
No significant circularity: the reconstruction is transparently anchored to an external IXPE measurement and the density PDF is benchmarked against independent Chandra results.
full rationale
The central 3D reconstruction is conditional on an externally measured input, the IXPE polarization measurement reported by Marin et al. (2023), which fixes the Bridge's line-of-sight position and the equivalent flare age. Propagating that age through the standard iso-delay paraboloid of Eq. (2), credited to Sunyaev & Churazov (1998), is a scenario calculation rather than a fit renamed as a prediction. The line-of-sight positions of the remaining clouds in Table 1 are derived from the observed epochs of Fe Kalpha brightening and fading combined with that assumed age, so they carry independent temporal information; the Bridge's own position is explicitly the anchoring input, not presented as a test. The molecular-density PDF is obtained by rescaling the measured surface rates via Eq. (3) and is then compared with the independent Chandra-based PDF of Churazov et al. (2017b), so it is externally benchmarked. Self-citations, such as the superluminal propagation reported by Ponti et al. (2010) and the simulations of Sormani et al. (2020), are either directly confirmed by the new XMM maps or used as illustrative context, and they are not load-bearing justifications for the paper's central inference. The choice of the positive-z branch placing the clouds behind Sgr A* and the non-propagation of the IXPE age uncertainty into Table 1 are genuine modeling caveats, but they are assumptions and uncertainty limitations rather than circular reductions: no equation in the paper is equivalent to its own input by construction.
Assumptions & free parameters
free parameters (4)
- Flare age =
200 yr (IXPE: 205+50/-30 yr)
- Flare luminosity L8 =
1e39 erg/s (assumed)
- Flare duration Delta t =
1.5 yr
- PDF truncation value s* =
-1.5
assumptions (6)
- standard math Paraboloid echo geometry of Eq. (2) for a single impulsive flare from Sgr A*
- domain assumption Surface brightness to density relation of Eq. (3)
- domain assumption Sgr A* is the illuminating source
- domain assumption The minimum map represents the non-variable component
- domain assumption Background continuum model with apec at kT = 8 keV and photon index Gamma = 2
- domain assumption The 20 and 50 km/s clouds are within 10 to 20 pc of Sgr A*
Cite this review
Pith. "Pith review of 25 years of XMM-Newton observations of the Sgr A complex: 3D distribution and internal structure of the clouds." pith.science (2026). https://pith.science/paper/UO3UBOH2
@misc{pith2026250109737,
author = {Pith},
title = {Pith review of: 25 years of XMM-Newton observations of the Sgr A complex: 3D distribution and internal structure of the clouds},
year = {2026},
howpublished = {\url{https://pith.science/paper/UO3UBOH2}},
note = {Machine review of arXiv:2501.09737}
}
abstract
Sgr A* is currently very faint. However, X-ray radiation reflected by the Sgr A complex, a group of nearby molecular clouds, suggests that it went through one or more periods of high activity some hundreds of years ago. We aim to determine whether previously proposed physical scenarios are consistent with the observed X-ray variability over the past 25 years, and to characterize the spatial distribution, shape, and internal structure of the clouds. We exploit the full set of XMM-Newton observations, extending the previously studied dataset on variability by at least 12 years. Starting from the recent IXPE result that places the so-called Bridge cloud 26 pc behind Sgr A*, we reconstruct the LOS position of the other clouds, assuming that they were illuminated by a single flare. Additionally, we derive the probability density function (PDF) of the molecular density. We also study the 3D geometry of the complex in case two flares illuminate the clouds. As of spring 2024, the lightfront is still illuminating the Sgr A complex, with the Bridge currently being the brightest cloud. The other clouds in the complex have faded significantly. In the single flare scenario, the Sgr A complex is located $\simeq$ 25 pc behind Sgr A*. In the past 25 years, the illuminated region spans 10-15 pc along the LOS. The derived PDF is roughly log-normal, consistent with previous Chandra results, with a possible high-density excess. Both a single and a multiple flares scenario can explain the observed X-ray variability. Previous concerns about the single flare scenario, raised by shorter monitoring, are now overcome in the 25 years of monitoring. If two flares illuminate the clouds, they must be separated by at least $\sim$ 30 years. We speculate that these clouds are closer to Sgr A* than the nuclear molecular ring at $\simeq$ 100-200 pc and possibly drifting from the ring to the inner region of the Galaxy.
Figures
Figures from the paper (11 more)
Reference graph
Works this paper leans on
-
[1]
Alves, J., Lombardi, M., & Lada, C. J. 2017, A&A, 606, L2
2017
-
[2]
C., et al
Anastasopoulou, K., Ponti, G., Sormani, M. C., et al. 2023, A&A, 671, A55
2023
-
[3]
M., Burkhart, B., Semenov, V
Appel, S. M., Burkhart, B., Semenov, V . A., et al. 2023, ApJ, 954, 93
2023
-
[4]
Arnaud, K. A. 1996, in Astronomical Society of the Pacific Conference Series, V ol. 101, Astronomical Data Analysis Software and Systems V , ed. G. H. Jacoby & J. Barnes, 17
1996
-
[5]
K., Bautz, M
Baganoff, F. K., Bautz, M. W., Brandt, W. N., et al. 2001, Nature, 413, 45
2001
-
[6]
K., Maeda, Y ., Morris, M., et al
Baganoff, F. K., Maeda, Y ., Morris, M., et al. 2003, ApJ, 591, 891
2003
-
[7]
2011, MNRAS, 416, 1436
Ballesteros-Paredes, J., Vázquez-Semadeni, E., Gazol, A., et al. 2011, MNRAS, 416, 1436
2011
-
[8]
2020, ApJS, 249, 35
Battersby, C., Keto, E., Walker, D., et al. 2020, ApJS, 249, 35
2020
Show all 103 references
-
[9]
L., Barnes, A., et al
Battersby, C., Walker, D. L., Barnes, A., et al. 2024, arXiv e-prints, arXiv:2410.17334
2024 arXiv
-
[10]
O., Lang, C
Butterfield, N. O., Lang, C. C., Ginsburg, A., et al. 2022, ApJ, 936, 186
2022
-
[11]
S., Cappelluti, N., et al
Capelli, R., Warwick, R. S., Cappelluti, N., et al. 2011, A&A, 525, L2
2011
-
[12]
S., Porquet, D., Gillessen, S., & Predehl, P
Capelli, R., Warwick, R. S., Porquet, D., Gillessen, S., & Predehl, P. 2012, A&A, 545, A35
2012
-
[13]
O., Ko, C
Chernyshov, D. O., Ko, C. M., Krivonos, R. A., Dogiel, V . A., & Cheng, K. S. 2018, ApJ, 863, 85
2018
-
[14]
H., Scoville, N
Christopher, M. H., Scoville, N. Z., Stolovy, S. R., & Yun, M. S. 2005, ApJ, 622, 346
2005
-
[15]
2018, A&A, 610, A34
Chuard, D., Terrier, R., Goldwurm, A., et al. 2018, A&A, 610, A34
2018
-
[16]
2002, MNRAS, 330, 817
Churazov, E., Sunyaev, R., & Sazonov, S. 2002, MNRAS, 330, 817
2002
-
[17]
2014, MNRAS, 443, L129
Clavel, M., Soldi, S., Terrier, R., et al. 2014, MNRAS, 443, L129
2014
-
[18]
2013, A&A, 558, A32
Clavel, M., Terrier, R., Goldwurm, A., et al. 2013, A&A, 558, A32
2013
-
[19]
Coil, A. L. & Ho, P. T. P. 2000, ApJ, 533, 245 Comerón, S., Knapen, J. H., Beckman, J. E., et al. 2010, MNRAS, 402, 2462
2000
-
[20]
M., et al
Degenaar, N., Wijnands, R., Miller, J. M., et al. 2015, Journal of High Energy Astrophysics, 7, 137
2015
-
[21]
2019, Science, 365, 664
Do, T., Hees, A., Ghez, A., et al. 2019, Science, 365, 664
2019
-
[22]
2009, PASJ, 61, 901
Dogiel, V ., Cheng, K.-S., Chernyshov, D., et al. 2009, PASJ, 61, 901
2009
-
[23]
J., Moore, T
Eden, D. J., Moore, T. J. T., Currie, M. J., et al. 2020, MNRAS, 498, 5936 Ehlerová, S., Palouš, J., Morris, M. R., et al. 2022, A&A, 668, A124 Event Horizon Telescope Collaboration, Akiyama, K., Alberdi, A., et al. 2022, ApJ, 930, L12
2020
-
[24]
& Klessen, R
Federrath, C. & Klessen, R. S. 2012, ApJ, 761, 156
2012
-
[25]
& Klessen, R
Federrath, C. & Klessen, R. S. 2013, ApJ, 763, 51
2013
-
[26]
S., & Schmidt, W
Federrath, C., Klessen, R. S., & Schmidt, W. 2008, ApJ, 688, L79 Ferrière, K. 2009, A&A, 505, 1183 Ferrière, K. 2012, A&A, 540, A50
2008
-
[27]
W., Lang, D., & Goodman, J
Foreman-Mackey, D., Hogg, D. W., Lang, D., & Goodman, J. 2013, PASP, 125, 306
2013
-
[28]
2003, ApJ, 594, 812
Genzel, R., Schödel, R., Ott, T., et al. 2003, ApJ, 594, 812
2003
-
[29]
M., Duchêne, G., Matthews, K., et al
Ghez, A. M., Duchêne, G., Matthews, K., et al. 2003, ApJ, 586, L127 Gravity Collaboration, Abuter, R., Aimar, N., et al. 2023, A&A, 677, L10
2003
-
[30]
2019, ApJ, 886, 96
Haggard, D., Nynka, M., Mon, B., et al. 2019, ApJ, 886, 96
2019
-
[31]
& Chabrier, G
Hennebelle, P. & Chabrier, G. 2013, ApJ, 770, 150
2013
-
[32]
& Falgarone, E
Hennebelle, P. & Falgarone, E. 2012, A&A Rev., 20, 55
2012
-
[33]
D., Barnes, A
Henshaw, J. D., Barnes, A. T., Battersby, C., et al. 2023, in Astronomical Society of the Pacific Conference Series, V ol. 534, Protostars and Planets VII, ed. S. Inutsuka, Y . Aikawa, T. Muto, K. Tomida, & M. Tamura, 83
2023
-
[34]
Herrnstein, R. M. & Ho, P. T. P. 2005, ApJ, 620, 287
2005
-
[35]
Ho, P. T. P., Ho, L. C., Szczepanski, J. C., Jackson, J. M., & Armstrong, J. T. 1991, Nature, 350, 309
1991
-
[36]
M., Ho, P
Hsieh, P.-Y ., Koch, P. M., Ho, P. T. P., et al. 2017, ApJ, 847, 3
2017
-
[37]
M., Kim, W.-T., et al
Hsieh, P.-Y ., Koch, P. M., Kim, W.-T., et al. 2021, ApJ, 913, 94
2021
-
[38]
Inui, T., Koyama, K., Matsumoto, H., & Tsuru, T. G. 2009, PASJ, 61, S241
2009
-
[39]
A., Burton, M
Jones, P. A., Burton, M. G., Cunningham, M. R., et al. 2012, MNRAS, 419, 2961
2012
-
[40]
A., Burrows, D
Kennea, J. A., Burrows, D. N., Kouveliotou, C., et al. 2013, ApJ, 770, L24
2013
-
[41]
2022, MNRAS, 509, 6068
Khabibullin, I., Churazov, E., & Sunyaev, R. 2022, MNRAS, 509, 6068
2022
-
[42]
2020, MNRAS, 495, 1414
Khabibullin, I., Churazov, E., Sunyaev, R., et al. 2020, MNRAS, 495, 1414
2020
-
[43]
Kinman, A. V . I., Petkova, M. A., Tan, J. C., Cosentino, G., & Cheng, Y . 2024, arXiv e-prints, arXiv:2403.04032
2024 arXiv
-
[44]
1996, PASJ, 48, 249
Koyama, K., Maeda, Y ., Sonobe, T., et al. 1996, PASJ, 48, 249
1996
-
[45]
2017, MNRAS, 468, 2822
Krivonos, R., Clavel, M., Hong, J., et al. 2017, MNRAS, 468, 2822
2017
-
[46]
Kruijssen, J. M. D., Dale, J. E., & Longmore, S. N. 2015, MNRAS, 447, 1059
2015
-
[47]
2019, MNRAS, 484, 1627
Kuznetsova, E., Krivonos, R., Clavel, M., et al. 2019, MNRAS, 484, 1627
2019
-
[48]
2022, MNRAS, 509, 1605
Kuznetsova, E., Krivonos, R., Lutovinov, A., & Clavel, M. 2022, MNRAS, 509, 1605
2022
-
[49]
M., Herter, T
Lau, R. M., Herter, T. L., Morris, M. R., Becklin, E. E., & Adams, J. D. 2013, ApJ, 775, 37
2013
-
[50]
L., et al
Lipman, D., Battersby, C., Walker, D. L., et al. 2024, arXiv e-prints, arXiv:2410.17321
2024 arXiv
-
[51]
N., Bally, J., Testi, L., et al
Longmore, S. N., Bally, J., Testi, L., et al. 2013, MNRAS, 429, 987
2013
-
[52]
2022, ApJS, 262, 16
Ma, Y ., Wang, H., Zhang, M., et al. 2022, ApJS, 262, 16
2022
-
[53]
K., Feigelson, E
Maeda, Y ., Baganoff, F. K., Feigelson, E. D., et al. 2002, ApJ, 570, 671
2002
-
[54]
P., et al
Mangilli, A., Aumont, J., Bernard, J. P., et al. 2019, A&A, 630, A74
2019
-
[55]
2023, Nature, 619, 41
Marin, F., Churazov, E., Khabibullin, I., et al. 2023, Nature, 619, 41
2023
-
[56]
2014, MNRAS, 441, 3170
Marin, F., Karas, V ., Kunneriath, D., & Muleri, F. 2014, MNRAS, 441, 3170
2014
-
[57]
2015, A&A, 576, A19
Marin, F., Muleri, F., Soffitta, P., Karas, V ., & Kunneriath, D. 2015, A&A, 576, A19
2015
-
[58]
A., & Pavlinsky, M
Markevitch, M., Sunyaev, R. A., & Pavlinsky, M. 1993, Nature, 364, 40
1993
-
[59]
S., Coil, A
McGary, R. S., Coil, A. L., & Ho, P. T. P. 2001, ApJ, 559, 326
2001
-
[60]
Mills, E. A. C. 2017, arXiv e-prints, arXiv:1705.05332
2017 arXiv
-
[61]
Molaro, M., Khatri, R., & Sunyaev, R. A. 2016, A&A, 589, A88
2016
-
[62]
2011, ApJ, 735, L33
Molinari, S., Bally, J., Noriega-Crespo, A., et al. 2011, ApJ, 735, L33
2011
-
[63]
V ., Zhang, S., et al
Mori, K., Gotthelf, E. V ., Zhang, S., et al. 2013, ApJ, 770, L23
2013
-
[64]
& Serabyn, E
Morris, M. & Serabyn, E. 1996, ARA&A, 34, 645
1996
-
[65]
M., & Vincent, F
Mossoux, E., Finociety, B., Beckers, J. M., & Vincent, F. H. 2020, A&A, 636, A25
2020
-
[66]
P., Baganoff, F
Muno, M. P., Baganoff, F. K., Bautz, M. W., et al. 2004, ApJ, 613, 326
2004
-
[67]
P., Baganoff, F
Muno, M. P., Baganoff, F. K., Brandt, W. N., Park, S., & Morris, M. R. 2007, ApJ, 656, L69
2007
-
[68]
2023, MNRAS, 523, 1373
Murase, T., Handa, T., Matsusaka, R., et al. 2023, MNRAS, 523, 1373
2023
-
[69]
A., Gammie, C., et al
Neilsen, J., Nowak, M. A., Gammie, C., et al. 2013, ApJ, 774, 42
2013
-
[70]
A., Neilsen, J., Markoff, S
Nowak, M. A., Neilsen, J., Markoff, S. B., et al. 2012, ApJ, 759, 95
2012
-
[71]
2014, in Protostars and Planets VI, ed
Padoan, P., Federrath, C., Chabrier, G., et al. 2014, in Protostars and Planets VI, ed. H. Beuther, R. S. Klessen, C. P. Dullemond, & T. Henning, 77–100
2014
-
[72]
Padoan, P., Nordlund, A., & Jones, B. J. T. 1997, MNRAS, 288, 145
1997
-
[73]
P., Baganoff, F
Park, S., Muno, M. P., Baganoff, F. K., et al. 2004, ApJ, 603, 548
2004
-
[74]
R., et al
Ponti, G., De Marco, B., Morris, M. R., et al. 2015, MNRAS, 454, 1525
2015
-
[75]
R., Terrier, R., & Goldwurm, A
Ponti, G., Morris, M. R., Terrier, R., & Goldwurm, A. 2013, in Astrophysics and Space Science Proceedings, V ol. 34, Cosmic Rays in Star-Forming Environ- ments, ed. D. F. Torres & O. Reimer, 331
2013
-
[76]
2010, ApJ, 714, 732
Ponti, G., Terrier, R., Goldwurm, A., Belanger, G., & Trap, G. 2010, ApJ, 714, 732
2010
-
[77]
2008, A&A, 488, 549
Porquet, D., Grosso, N., Predehl, P., et al. 2008, A&A, 488, 549
2008
-
[78]
2003, A&A, 407, L17
Porquet, D., Predehl, P., Aschenbach, B., et al. 2003, A&A, 407, L17
2003
-
[79]
A., et al
Rea, N., Esposito, P., Pons, J. A., et al. 2013, ApJ, 775, L34
2013
-
[80]
A., Güsten, R., Weiß, A., et al
Requena-Torres, M. A., Güsten, R., Weiß, A., et al. 2012, A&A, 542, L21 Article number, page 18 of 19 Giovanni Stel et al.: 25 years of XMM-Newton observations of the Sgr A complex
2012
-
[81]
2024, The Astronomer’s Telegram, 16481, 1
Reynolds, M., Degenaar, N., Wijnands, R., Miller, J., & Kennea, J. 2024, The Astronomer’s Telegram, 16481, 1
2024
-
[82]
2015, A&A, 575, A79 Schödel, R., Ott, T., Genzel, R., et al
Schneider, N., Ossenkopf, V ., Csengeri, T., et al. 2015, A&A, 575, A79 Schödel, R., Ott, T., Genzel, R., et al. 2002, Nature, 419, 694
2015
-
[83]
2001, A&A, 372, 651
Sidoli, L., Mereghetti, S., Treves, A., et al. 2001, A&A, 372, 651
2001
-
[84]
1995, PASJ, 47, 527
Sofue, Y . 1995, PASJ, 47, 527
1995
-
[85]
C., Sobacchi, E., & Sanders, J
Sormani, M. C., Sobacchi, E., & Sanders, J. L. 2024, MNRAS, 528, 5742
2024
-
[86]
C., Tress, R
Sormani, M. C., Tress, R. G., Glover, S. C. O., et al. 2020, MNRAS, 497, 5024
2020
-
[87]
2021, A&A, 653, A63
Spilker, A., Kainulainen, J., & Orkisz, J. 2021, A&A, 653, A63
2021
-
[88]
2023, A&A, 679, A44
Stel, G., Ponti, G., & Haardt, F. 2023, A&A, 679, A44
2023
-
[89]
K., Schinnerer, E., Williams, T
Stuber, S. K., Schinnerer, E., Williams, T. G., et al. 2023, A&A, 676, A113
2023
-
[90]
2024, ApJ, 967, 133
Sun, J., He, H., Batschkun, K., et al. 2024, ApJ, 967, 133
2024
-
[91]
& Churazov, E
Sunyaev, R. & Churazov, E. 1998, MNRAS, 297, 1279
1998
-
[92]
A., Markevitch, M., & Pavlinsky, M
Sunyaev, R. A., Markevitch, M., & Pavlinsky, M. 1993, ApJ, 407, 606
1993
-
[93]
2012, A&A, 546, A88
Tatischeff, V ., Decourchelle, A., & Maurin, G. 2012, A&A, 546, A88
2012
-
[94]
2018, A&A, 612, A102
Terrier, R., Clavel, M., Soldi, S., et al. 2018, A&A, 612, A102
2018
-
[95]
2010, ApJ, 719, 143
Terrier, R., Ponti, G., Bélanger, G., et al. 2010, ApJ, 719, 143
2010
-
[96]
G., Sormani, M
Tress, R. G., Sormani, M. C., Girichidis, P., et al. 2024, arXiv e-prints, arXiv:2403.13048
2024 arXiv
-
[97]
G., Sormani, M
Tress, R. G., Sormani, M. C., Glover, S. C. O., et al. 2020, MNRAS, 499, 4455
2020
-
[98]
1994, ApJ, 423, 681
Vazquez-Semadeni, E. 1994, ApJ, 423, 681
1994
-
[99]
V ., Girichidis, P., Marinkova, L., et al
Veltchev, T. V ., Girichidis, P., Marinkova, L., et al. 2024, MNRAS, 528, 432
2024
-
[100]
L., Battersby, C., Lipman, D., et al
Walker, D. L., Battersby, C., Lipman, D., et al. 2024, arXiv e-prints, arXiv:2410.17320
2024 arXiv
-
[101]
C., Soffitta, P., Baldini, L., et al
Weisskopf, M. C., Soffitta, P., Baldini, L., et al. 2022, Journal of Astronomical
2022
-
[102]
2000, ApJ, 542, 914
Wilms, J., Allen, A., & McCray, R. 2000, ApJ, 542, 914
2000
-
[103]
J., Mori, K., et al
Zhang, S., Hailey, C. J., Mori, K., et al. 2015, ApJ, 815, 132 Article number, page 19 of 19
2015
Reviewed August 10, 2026 · model on record in the stance chip above.
Discussion (0). Continue with ORCID to comment.