REVIEW 2 major objections 5 minor 86 references
Radio and X-ray Observations of the Transitional Supernova 2019yvr: Insights into the Progenitor Mass-Loss History
T0 review · 2 major / 5 minor · reviewed 2026-07-11 · grok-4.5
Pith's one-line read Radio and X-ray data show SN 2019yvr hit no sharp CSM density jump when hydrogen lines appeared, only a mildly decreasing mass-loss rate.
desk verdict Solid multi-year radio+X-ray campaign of SN 2019yvr that cleanly shows an optical Ib o IIn transition without the density jump seen in 2014C; absolute Ṁ scale is conventional but the comparative claim holds. 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
Joint SSA modeling of the full radio SED in frequency and time (plus single-epoch broken-power-law fits), converted to shock radius, magnetic field and mass-loss rate under fixed microphysical parameters and an assumed 100 km s^{-1} CSM speed.
What would settle it
A direct spectroscopic measurement of the unshocked CSM velocity, or a late-time radio/X-ray rebrightening that reveals a dense outer shell, would overturn the claim of a smooth, only mildly declining density profile.
Extended reading notes
Core claim
The multi-wavelength data set for SN 2019yvr is best described by a synchrotron-self-absorbed shock expanding into a CSM density profile ho o r^{-1.65 igoplus 0.25}, corresponding to a mildly decreasing mass-loss rate of order 10^{-5} M⊙ yr^{-1}. That profile shows no order-of-magnitude jump at the epoch when optical hydrogen emission emerges, in clear contrast to SN 2014C.
Load-bearing premise
The conversion of radio radius and magnetic field into a mass-loss rate rests on an assumed wind speed of 100 km/s and fixed electron and magnetic energy fractions that were never measured for this object.
Editorial extensions
If this is right
- Appearance of shock-driven hydrogen lines does not require a sudden jump in CSM density.
- The high early shock speed favors a compact rather than extended progenitor for this Ib o IIn event.
- Mass loss at ~10^{-5} M⊙ yr^{-1} continued for hundreds of years, consistent with either binary stripping or a Wolf-Rayet wind.
- Transitional SNe are not a single class: 2019yvr, 2014C, 2004dk and 2019oys probe different CSM histories.
Reading between the lines
- If the same smooth profile is common, many ordinary Type Ib events may be interacting with low-density H-rich material that simply never produces visible narrow lines.
- The lack of a density jump weakens the idea that common-envelope ejection within the last ~1000 years is the usual path to Ib o IIn transitions.
- A systematic early-time radio survey of Type Ib events could test whether the mildly declining profile of 2019yvr is typical or exceptional.
Editorial analysis
A structured set of objections, weighed in public.
Referee Report
Summary. The paper presents multi-year GMRT+VLA radio and Swift+Chandra X-ray observations of the transitional SN 2019yvr (Ib → IIn at ~100 d). Joint and single-epoch SSA modeling of the radio SEDs yields a CSM density profile ρ ∝ r^{-1.65 ± 0.25}, shock speeds ≳ 30 000 km s^{-1} at early times, and mass-loss rates ~1–3 imes 10^{-5} M_⊙ yr^{-1} (v_CSM = 100 km s^{-1}, ε_B = 0.01). The continuous radio coverage and lack of a secondary peak or free-free optical-depth jump across the optical transition are used to argue that SN 2019yvr did not experience the dramatic CSM density jump seen in SN 2014C. The X-ray detection at 42 d is interpreted as thermal emission from an adiabatic reverse shock and yields a consistent (within uncertainties) mass-loss rate. The authors place the object among other Ib → IIn events and discuss binary versus wind-driven mass-loss scenarios for a compact progenitor.
Significance. If the no-jump conclusion holds, the work cleanly separates optical spectral metamorphosis from a large change in CSM density and shows that the two need not be causally linked. The five-year radio light curve, the internally consistent derivation of m and s from R(t) and B(t), and the direct comparison with SN 2014C, 2004dk and 2019oys constitute a useful multi-wavelength benchmark for transitional SESNe. The high early shock speed also supplies an independent argument for a compact progenitor that complements the pre-explosion imaging debate. Absolute Ṁ values remain conventional (they scale with ε_B and v_CSM), but the relative density evolution that underpins the central claim does not.
major comments (2)
- Section 3.1.3–3.1.4 and Equation 8: the absolute Ṁ scale (and therefore the numerical comparison with optical and X-ray estimates) rests on the fixed choices ε_B = 0.01, ε_e = 0.1 and v_CSM = 100 km s^{-1}. While the paper notes that ε_B = 0.01 improves consistency with optical Ṁ, a short sensitivity table or paragraph showing how Ṁ and the density profile change for ε_B ∈ [0.001, 0.1] and for a plausible range of v_CSM would make the robustness of the absolute numbers transparent. The comparative no-jump statement itself is unaffected.
- Section 3.2 (X-ray analysis): the reverse-shock luminosity formula (Eq. 9) is evaluated with n = 7 and s = 1.65 taken from the radio fit, and with an assumed plasma temperature T = 5 keV. Because the X-ray spectrum has very low counts, these parameters are essentially unconstrained by the X-ray data alone. The resulting Ṁ is quoted as consistent with radio, but the uncertainty is dominated by the assumed n, s and T. A brief exploration of the allowed range (or an explicit statement that the X-ray Ṁ is only order-of-magnitude) would strengthen the multi-wavelength consistency claim.
minor comments (5)
- Figure 4 and Table 2: the joint SSA fit has χ^{2}_ u ≈ 5.4; the text correctly notes residual structure at 1.25 GHz. A short remark on whether a broken power-law density profile or a modest free-free contribution could reduce the residuals would be useful, even if the pure-SSA model remains preferred.
- Table 3 caption and Section 3.1.3: the extrapolation of non-contemporaneous GMRT band-4 points onto the VLA epochs is described only briefly. A one-sentence statement of the temporal index used for the extrapolation would improve reproducibility.
- Figure 8 and Table 4: the optical transition windows for the comparison objects are taken from the literature; adding the exact spectral epochs (or a reference to the Wiserep IDs) would make the timeline comparison fully self-contained.
- Section 2.2: the Swift host-galaxy subtraction uses a single pre-explosion power-law model. A sentence confirming that the AGN flux is stable between the 2014–2016 pre-explosion epochs and the post-explosion bins would address a possible systematic.
- Typographical: abstract and introduction use both “∼100 days” and “∼ 100 days”; standardize spacing. In Table 5 the final VLA epoch is listed as 1777 d while the text refers to 1722 d for the 5 GHz detection—clarify which date is used for the late-time Ṁ estimate.
Circularity Check
No significant circularity: density index s and no-jump claim follow from multi-epoch SSA fits and continuous light-curve coverage; absolute Ṁ scale depends on conventional microphysical choices but is not load-bearing for the central comparative result.
full rationale
The paper applies the standard Chevalier (1998) SSA formalism to multi-frequency radio data spanning the optical Ib→IIn transition. Single-epoch broken-power-law fits yield R(t) and B(t); an MCMC fit then gives m = 0.70^{+0.13}_{-0.07} and α_B ≈ −0.87, from which s = 1.65 ± 0.25 is obtained via the textbook relation α_B = [m(2−s)/2]−1. This is a genuine derivation from the observed temporal evolution, not a quantity forced by construction or by a self-citation uniqueness theorem. The absolute mass-loss rate (Eq. 8) does depend on the conventional choices ε_B = 0.01, ε_e = 0.1 and an assumed v_CSM = 100 km s^{-1}, but these overall scale factors cancel in the relative density evolution that underpins the paper’s strongest claim—the absence of a dramatic CSM density jump of the kind seen in SN 2014C. That claim is supported by continuous SSA coverage across the ~100-day transition (epochs at 52, 198, 287, 419 d plus late detections), the single power-law index, and the lack of a secondary radio peak or free-free optical-depth jump. Minor self-citations (Baer-Way et al. 2025a,b; Nayana et al. 2022, 2025) supply standard formulae or comparison objects and are not load-bearing for the no-jump result. The derivation is therefore self-contained against external benchmarks; score 1 reflects only the conventional microphysical assumptions that affect absolute Ṁ normalization.
Assumptions & free parameters
free parameters (5)
- ε_B (magnetic energy fraction) =
0.01
- ε_e (electron energy fraction) =
0.1
- v_CSM (CSM outflow speed) =
100 km s^{-1}
- volume filling factor f =
0.5
- electron power-law index p (via α) =
p=3
assumptions (4)
- domain assumption Synchrotron self-absorption (SSA) dominates free-free absorption and the Chevalier (1998) self-similar formalism applies (ν_m < ν_a < ν_c).
- domain assumption The CSM density follows a single power-law ρ ∝ r^{-s} with constant microphysical parameters over the entire five-year baseline.
- domain assumption X-ray emission at 42 d is thermal free-free from an adiabatic reverse shock.
- domain assumption Distance = 14.7 Mpc and explosion date = 2019 Dec 22.
Cite this review
Pith. "Pith review of Radio and X-ray Observations of the Transitional Supernova 2019yvr: Insights into the Progenitor Mass-Loss History." pith.science (2026). https://pith.science/paper/HNAY2ELD
@misc{pith2026260705500,
author = {Pith},
title = {Pith review of: Radio and X-ray Observations of the Transitional Supernova 2019yvr: Insights into the Progenitor Mass-Loss History},
year = {2026},
howpublished = {\url{https://pith.science/paper/HNAY2ELD}},
note = {Machine review of arXiv:2607.05500}
}
abstract
The final life stages of the massive star progenitors of stripped-envelope supernovae (SESNe) are still an open question, especially when it comes to the timing and magnitude of the progenitor stripping. Observing SESNe across the electromagnetic spectrum allows for the most direct constraints on mass loss in the final stages of progenitor evolution. In this work, we present radio (GMRT+VLA) and X-ray (Swift+Chandra) observations of SN 2019yvr obtained from 18-1784 days post-explosion. SN 2019yvr was a type Ib supernova (SN Ib, with strong helium but no or little optical hydrogen features) that transitioned into a type IIn supernova (SN IIn, with shock-driven hydrogen features) at $\sim$ 100 days post-explosion. The radio evolution is best-fit by a synchrotron self-absorbed model with a $\rho \propto r^{-1.65 \pm 0.25}$ CSM density profile, suggesting a decreasing mass-loss rate from the progenitor in the years leading up to the explosion. The radio-derived shock speed is high, more than 30,000 km/s at early times, suggesting a compact progenitor star. The combined radio and X-ray data probe CSM that extends from less than $10^{16}$ cm up to $\sim$ 20$\times10^{16}$ cm and was created by mass-loss from $\sim 1-3 \times10^{-5} \rm{M_{\odot} yr^{-1}} $ (assuming a CSM speed of 100 km/s). The combined dataset rules out any dramatic jump in CSM density (which was seen in the optical analog SN 2014C) associated with the emergence of optical hydrogen emission in SN 2019yvr. We place SN 2019yvr in context with similar transitional SNe and discuss implications for the progenitor.
Figures
Figures from the paper (6 more)
Reference graph
Works this paper leans on
-
[1]
R., M¨ uller, B., Antoniadis, J., et al
Aguilera-Dena, D. R., M¨ uller, B., Antoniadis, J., et al. 2023, A&A, 671, A134, doi: 10.1051/0004-6361/202243519
-
[2]
Anderson, G. E., Horesh, A., Mooley, K. P., et al. 2017, MNRAS, 466, 3648, doi: 10.1093/mnras/stw3310
-
[3]
Andrews, J. E., & Smith, N. 2018, MNRAS, 477, 74, doi: 10.1093/mnras/sty584
-
[4]
J., N., Jacobson-Gal´ an, W., et al
Baer-Way, R., A. J., N., Jacobson-Gal´ an, W., et al. 2025a, ApJL, 995, L49, doi: 10.3847/2041-8213/ae1cb8
-
[5]
2025b, ApJ, 983, 101, doi: 10.3847/1538-4357/adc00a
Baer-Way, R., Chandra, P., Modjaz, M., et al. 2025b, ApJ, 983, 101, doi: 10.3847/1538-4357/adc00a
-
[6]
Balasubramanian, A., Corsi, A., Polisensky, E., Clarke, T. E., & Kassim, N. E. 2021, ApJ, 923, 32, doi: 10.3847/1538-4357/ac2154
-
[7]
F., Bartel, N., Argo, M., et al
Bietenholz, M. F., Bartel, N., Argo, M., et al. 2021, ApJ, 908, 75, doi: 10.3847/1538-4357/abccd9
-
[8]
2022, ApJ, 939, 105, doi: 10.3847/1538-4357/ac8b14
Brethauer, D., Margutti, R., Milisavljevic, D., et al. 2022, ApJ, 939, 105, doi: 10.3847/1538-4357/ac8b14
Show all 86 references
-
[9]
A., Chugai, N., Milisavljevic, D., & Fransson, C
Chandra, P., Chevalier, R. A., Chugai, N., Milisavljevic, D., & Fransson, C. 2020, ApJ, 902, 55, doi: 10.3847/1538-4357/abb460
2020 doi
- [10]
-
[11]
Chevalier, R. A. 1982, ApJ, 259, 302, doi: 10.1086/160167 —. 1998, ApJ, 499, 810, doi: 10.1086/305676
1982 doi
-
[13]
A., & Soderberg, A
Chevalier, R. A., & Soderberg, A. M. 2010, ApJL, 711, L40, doi: 10.1088/2041-8205/711/1/L40
2010 doi
-
[14]
C., Phillips, M
Clocchiatti, A., Wheeler, J. C., Phillips, M. M., et al. 1997, ApJ, 483, 675, doi: 10.1086/304268
1997 doi
-
[15]
2022, ApJ, 938, 84, doi: 10.3847/1538-4357/ac8c26
DeMarchi, L., Margutti, R., Dittman, J., et al. 2022, ApJ, 938, 84, doi: 10.3847/1538-4357/ac8c26
2022 doi
-
[16]
Dessart, L., & Jacobson-Gal´ an, W. V. 2023, A&A, 677, A105, doi: 10.1051/0004-6361/202346754
2023 doi
-
[17]
R., & Langer, N
Dessart, L., Yoon, S.-C., Aguilera-Dena, D. R., & Langer, N. 2020, A&A, 642, A106, doi: 10.1051/0004-6361/202038763
2020 doi
-
[18]
2024, ApJ, 974, 316, doi: 10.3847/1538-4357/ad710e
Dong, Y., Valenti, S., Ashall, C., et al. 2024, ApJ, 974, 316, doi: 10.3847/1538-4357/ad710e
2024 doi
-
[19]
Dwarkadas, V. V. 2025, Universe, 11, 161, doi: 10.3390/universe11050161
2025 doi
-
[20]
V., & Gruszko, J
Dwarkadas, V. V., & Gruszko, J. 2012, MNRAS, 419, 1515, doi: 10.1111/j.1365-2966.2011.19808.x
2012 doi
-
[21]
2026, A&A, 706, A169, doi: 10.1051/0004-6361/202557572 18Baer-way et al
Ercolino, A., Jin, H., Langer, N., et al. 2026, A&A, 706, A169, doi: 10.1051/0004-6361/202557572 18Baer-way et al
2026 doi
-
[22]
A., Beardmore, A
Evans, P. A., Beardmore, A. P., Page, K. L., et al. 2009, MNRAS, 397, 1177, doi: 10.1111/j.1365-2966.2009.14913.x
2009 doi
-
[23]
2019, Nature Astronomy, 3, 434, doi: 10.1038/s41550-019-0710-6
Gal-Yam, A. 2019, Nature Astronomy, 3, 434, doi: 10.1038/s41550-019-0710-6
2019 doi
-
[24]
2024, MNRAS, 529, L33, doi: 10.1093/mnrasl/slad195
Ferrari, L., Folatelli, G., Kuncarayakti, H., et al. 2024, MNRAS, 529, L33, doi: 10.1093/mnrasl/slad195
2024 doi
-
[25]
Filippenko, A. V. 1997, ARA&A, 35, 309, doi: 10.1146/annurev.astro.35.1.309
1997 doi
-
[26]
V., & Chornock, R
Filippenko, A. V., & Chornock, R. 2001, IAUC, 7737, 3
2001
-
[27]
W., Lang, D., & Goodman, J
Foreman-Mackey, D., Hogg, D. W., Lang, D., & Goodman, J. 2013, PASP, 125, 306, doi: 10.1086/670067
2013 doi
-
[28]
Fransson, C., Lundqvist, P., & Chevalier, R. A. 1996, ApJ, 461, 993, doi: 10.1086/177119
1996 doi
-
[29]
O., et al
Gal-Yam, A., Arcavi, I., Ofek, E. O., et al. 2014, Nature, 509, 471, doi: 10.1038/nature13304
2014 doi
-
[30]
A., Jiang, Y.-F., Bildsten, L., & Cantiello, M
Goldberg, J. A., Jiang, Y.-F., Bildsten, L., & Cantiello, M. 2025, arXiv e-prints, arXiv:2508.12486, doi: 10.48550/arXiv.2508.12486 Gr¨ afener, G., Owocki, S. P., Grassitelli, L., & Langer, N. 2017, A&A, 608, A34, doi: 10.1051/0004-6361/201731590
-
[31]
H., Georgy, C., & Ekstr¨ om, S
Groh, J. H., Georgy, C., & Ekstr¨ om, S. 2013, A&A, 558, L1, doi: 10.1051/0004-6361/201322369
2013 doi
-
[32]
Hartmann, D. H. 2003, ApJ, 591, 288, doi: 10.1086/375341
2003 doi
-
[33]
2026, ApJ, 1001, 111, doi: 10.3847/1538-4357/ae4e22 Jacobson-Gal´ an, W
Hillenkamp, E., Baer-Way, R., Chandra, P., et al. 2026, ApJ, 1001, 111, doi: 10.3847/1538-4357/ae4e22 Jacobson-Gal´ an, W. V., Dessart, L., Margutti, R., et al. 2023, ApJL, 954, L42, doi: 10.3847/2041-8213/acf2ec
2026 doi
-
[34]
Kale, R., & Ishwara-Chandra, C. H. 2021, Experimental Astronomy, 51, 95, doi: 10.1007/s10686-020-09677-6
2021 doi
-
[35]
2012, MNRAS, 420, L6, doi: 10.1111/j.1745-3933.2011.01178.x
Katz, B. 2012, MNRAS, 420, L6, doi: 10.1111/j.1745-3933.2011.01178.x
2012 doi
-
[36]
D., Drout, M
Kilpatrick, C. D., Drout, M. R., Auchettl, K., et al. 2021, MNRAS, 504, 2073, doi: 10.1093/mnras/stab838
2021 doi
-
[37]
P., et al
Kumar, S., Baer-Way, R., Ravi, A. P., et al. 2026, arXiv e-prints, arXiv:2601.19018, doi: 10.48550/arXiv.2601.19018
2026 doi
-
[38]
2012, ARA&A, 50, 107, doi: 10.1146/annurev-astro-081811-125534
Langer, N. 2012, ARA&A, 50, 107, doi: 10.1146/annurev-astro-081811-125534
2012 doi
-
[39]
2025, arXiv e-prints, arXiv:2508.11088, doi: 10.48550/arXiv.2508.11088
Podsiadlowski, P. 2025, arXiv e-prints, arXiv:2508.11088, doi: 10.48550/arXiv.2508.11088
2025 doi
-
[40]
E., O’Brien, J
Lu, J., Kerzendorf, W. E., O’Brien, J. T., et al. 2026, ApJL, 1002, L11, doi: 10.3847/2041-8213/ae5b8f
2026 doi
-
[41]
2012, ApJ, 758, 81, doi: 10.1088/0004-637X/758/2/81
Maeda, K. 2012, ApJ, 758, 81, doi: 10.1088/0004-637X/758/2/81
2012 doi
-
[42]
2021, ApJ, 918, 34, doi: 10.3847/1538-4357/ac0dbc
Maeda, K., Chandra, P., Matsuoka, T., et al. 2021, ApJ, 918, 34, doi: 10.3847/1538-4357/ac0dbc
2021 doi
-
[43]
J., et al
Maeda, K., Chandra, P., Moriya, T. J., et al. 2023, ApJ, 942, 17, doi: 10.3847/1538-4357/aca1b7
2023 doi
-
[44]
2017, ApJ, 835, 140, doi: 10.3847/1538-4357/835/2/140
Margutti, R., Kamble, A., Milisavljevic, D., et al. 2017, ApJ, 835, 140, doi: 10.3847/1538-4357/835/2/140
2017 doi
-
[45]
C., Filippenko, A
Mauerhan, J. C., Filippenko, A. V., Zheng, W., et al. 2018, MNRAS, 478, 5050, doi: 10.1093/mnras/sty1307
2018 doi
-
[46]
2024, in American Astronomical Society Meeting Abstracts, Vol
McLaughlin, M., Walter, F., Hallinan, G., & Ravi, V. 2024, in American Astronomical Society Meeting Abstracts, Vol. 243, American Astronomical Society Meeting Abstracts #243, 261.17
2024
-
[47]
2007, in Astronomical Society of the Pacific Conference Series, Vol
Golap, K. 2007, in Astronomical Society of the Pacific Conference Series, Vol. 376, Astronomical Data Analysis Software and Systems XVI, ed. R. A. Shaw, F. Hill, & D. J. Bell, 127
2007
-
[48]
2015, ApJ, 815, 120, doi: 10.1088/0004-637X/815/2/120
Milisavljevic, D., Margutti, R., Kamble, A., et al. 2015, ApJ, 815, 120, doi: 10.1088/0004-637X/815/2/120
2015 doi
-
[49]
P., & Arcavi, I
Modjaz, M., Guti´ errez, C. P., & Arcavi, I. 2019, Nature Astronomy, 3, 717, doi: 10.1038/s41550-019-0856-2
2019 doi
-
[50]
J., Chandra, P., Krishna, A., & Anupama, G
Nayana, A. J., Chandra, P., Krishna, A., & Anupama, G. C. 2022, ApJ, 934, 186, doi: 10.3847/1538-4357/ac7c1e
2022 doi
-
[51]
J., Margutti, R., Wiston, E., et al
Nayana, A. J., Margutti, R., Wiston, E., et al. 2025a, ApJL, 993, L6, doi: 10.3847/2041-8213/ae0b4d —. 2025b, ApJ, 985, 51, doi: 10.3847/1538-4357/adc2fb
-
[52]
I., Iwamoto, K., & Suzuki, T
Nomoto, K. I., Iwamoto, K., & Suzuki, T. 1995, PhR, 256, 173, doi: 10.1016/0370-1573(94)00107-E
1995 doi
-
[53]
2017, ApJ, 840, 90, doi: 10.3847/1538-4357/aa6ea9
Ouchi, R., & Maeda, K. 2017, ApJ, 840, 90, doi: 10.3847/1538-4357/aa6ea9
2017 doi
-
[54]
M., Aird, J., & Barlow-Hall, C
Pennock, C. M., Aird, J., & Barlow-Hall, C. L. 2025, MNRAS, 544, 1779, doi: 10.1093/mnras/staf1838
2025 doi
-
[55]
A., Fremling, C., Sollerman, J., et al
Perley, D. A., Fremling, C., Sollerman, J., et al. 2020, ApJ, 904, 35, doi: 10.3847/1538-4357/abbd98
2020 doi
-
[56]
2004, A&A, 427, 35, doi: 10.1051/0004-6361:20041128
Persic, M., Cappi, M., Rephaeli, Y., et al. 2004, A&A, 427, 35, doi: 10.1051/0004-6361:20041128
2004 doi
-
[57]
C., & Hsu, J
Podsiadlowski, P., Joss, P. C., & Hsu, J. J. L. 1992, ApJ, 391, 246, doi: 10.1086/171341
1992 doi
-
[58]
Podsiadlowski, P., Langer, N., Poelarends, A. J. T., et al. 2004, ApJ, 612, 1044, doi: 10.1086/421713
2004 doi
-
[59]
C., Vink´ o, J., et al
Pooley, D., Wheeler, J. C., Vink´ o, J., et al. 2019, ApJ, 883, 120, doi: 10.3847/1538-4357/ab3e36
2019 doi
-
[60]
2012, MNRAS, 423, L92, doi: 10.1111/j.1745-3933.2012.01264.x
Quataert, E., & Shiode, J. 2012, MNRAS, 423, L92, doi: 10.1111/j.1745-3933.2012.01264.x
2012 doi
-
[61]
D., Sadler, E
Ryder, S. D., Sadler, E. M., Subrahmanyan, R., et al. 2004, MNRAS, 349, 1093, doi: 10.1111/j.1365-2966.2004.07589.x
2004 doi
-
[62]
2025, ApJ, 990, 172, doi: 10.3847/1538-4357/adf067 Radio and X-ray Insights into SN 2019yvr19
Scherbak, P., Lu, W., & Fuller, J. 2025, ApJ, 990, 172, doi: 10.3847/1538-4357/adf067 Radio and X-ray Insights into SN 2019yvr19
2025 doi
-
[63]
2025, ApJ, 979, 189, doi: 10.3847/1538-4357/ad9e93
Sfaradi, I., Horesh, A., Fender, R., et al. 2025, ApJ, 979, 189, doi: 10.3847/1538-4357/ad9e93
2025 doi
-
[64]
2024, A&A, 686, A129, doi: 10.1051/0004-6361/202348761
Sfaradi, I., Horesh, A., Sollerman, J., et al. 2024, A&A, 686, A129, doi: 10.1051/0004-6361/202348761
2024 doi
-
[65]
J., Piro, A
Shappee, B. J., Piro, A. L., Holoien, T. W.-S., et al. 2016, ApJ, 826, 144, doi: 10.3847/0004-637X/826/2/144
2016 doi
-
[66]
2017, PASP, 129, 054201, doi: 10.1088/1538-3873/aa54a6
Shivvers, I., Modjaz, M., Zheng, W., et al. 2017, PASP, 129, 054201, doi: 10.1088/1538-3873/aa54a6
2017 doi
-
[67]
2017, Interacting Supernovae: Types IIn and Ibn (Springer International Publishing), 403–429, doi: 10.1007/978-3-319-21846-5 38
Smith, N. 2017, Interacting Supernovae: Types IIn and Ibn (Springer International Publishing), 403–429, doi: 10.1007/978-3-319-21846-5 38
2017 doi
-
[68]
V., & Chornock, R
Smith, N., Li, W., Filippenko, A. V., & Chornock, R. 2011, MNRAS, 412, 1522, doi: 10.1111/j.1365-2966.2011.17229.x
2011 doi
-
[69]
Soderberg, A. M. 2007, in American Institute of Physics Conference Series, Vol. 937, Supernova 1987A: 20 Years After: Supernovae and Gamma-Ray Bursters, ed. S. Immler, K. Weiler, & R. McCray, 492–499, doi: 10.1063/1.3682950
2007 doi
-
[70]
M., Margutti, R., Zauderer, B
Soderberg, A. M., Margutti, R., Zauderer, B. A., et al. 2012, ApJ, 752, 78, doi: 10.1088/0004-637X/752/2/78
2012 doi
-
[71]
2020, A&A, 643, A79, doi: 10.1051/0004-6361/202038960
Sollerman, J., Fransson, C., Barbarino, C., et al. 2020, A&A, 643, A79, doi: 10.1051/0004-6361/202038960
2020 doi
-
[72]
R., Crowther, P
Sun, N.-C., Maund, J. R., Crowther, P. A., et al. 2022, MNRAS, 510, 3701, doi: 10.1093/mnras/stab3768
2022 doi
-
[73]
P., Wheeler, J
Thomas, B. P., Wheeler, J. C., Dwarkadas, V. V., et al. 2022, ApJ, 930, 57, doi: 10.3847/1538-4357/ac5fa6
2022 doi
- [74]
-
[75]
Uomoto, A., & Kirshner, R. P. 1985, A&A, 149, L7 Van Dyk, S. D., Zheng, W., Clubb, K. I., et al. 2013, ApJL, 772, L32, doi: 10.1088/2041-8205/772/2/L32
1985 doi
-
[76]
W., Panagia, N., & Sramek, R
Weiler, K. W., Panagia, N., & Sramek, R. A. 1990, ApJ, 364, 611, doi: 10.1086/169444
1990 doi
-
[77]
W., Sramek, R
Weiler, K. W., Sramek, R. A., Panagia, N., van der Hulst, J. M., & Salvati, M. 1986, ApJ, 301, 790, doi: 10.1086/163944
1986 doi
-
[78]
M., & Chevalier, R
Wellons, S., Soderberg, A. M., & Chevalier, R. A. 2012, ApJ, 752, 17, doi: 10.1088/0004-637X/752/1/17
2012 doi
-
[79]
C., & Harkness, R
Wheeler, J. C., & Harkness, R. P. 1990, Reports on Progress in Physics, 53, 1467, doi: 10.1088/0034-4885/53/12/001
1990 doi
-
[80]
2021, ApJ, 908, 150, doi: 10.3847/1538-4357/abd244
Williamson, M., Kerzendorf, W., & Modjaz, M. 2021, ApJ, 908, 150, doi: 10.3847/1538-4357/abd244
2021 doi
-
[81]
Willingale, R., Starling, R. L. C., Beardmore, A. P., Tanvir, N. R., & O’Brien, P. T. 2013, MNRAS, 431, 394, doi: 10.1093/mnras/stt175
2013 doi
-
[82]
E., Langer, N., & Weaver, T
Woosley, S. E., Langer, N., & Weaver, T. A. 1993, ApJ, 411, 823, doi: 10.1086/172886
1993 doi
-
[83]
E., Sukhbold, T., & Kasen, D
Woosley, S. E., Sukhbold, T., & Kasen, D. N. 2021, ApJ, 913, 145, doi: 10.3847/1538-4357/abf3be
2021 doi
-
[84]
2012, PASP, 124, 668, doi: 10.1086/666656
Yaron, O., & Gal-Yam, A. 2012, PASP, 124, 668, doi: 10.1086/666656
2012 doi
-
[85]
2025, A&A, 693, A307, doi: 10.1051/0004-6361/202452214
Yesmin, N., Pellegrino, C., Modjaz, M., et al. 2025, A&A, 693, A307, doi: 10.1051/0004-6361/202452214
2025 doi
-
[86]
2025, ApJ, 978, 163, doi: 10.3847/1538-4357/ad9c76
Zhai, Q., Zhang, J., Lin, W., et al. 2025, ApJ, 978, 163, doi: 10.3847/1538-4357/ad9c76
2025 doi
-
[87]
2012, AJ, 144, 131, doi: 10.1088/0004-6256/144/5/131
Zhang, T., Wang, X., Wu, C., et al. 2012, AJ, 144, 131, doi: 10.1088/0004-6256/144/5/131
2012 doi
Reviewed July 11, 2026 · model on record in the stance chip above.
Discussion (0). Sign in to comment.