SN 2023ixf in Messier 101: Photo-ionization of Dense, Close-in Circumstellar Material in a Nearby Type II Supernova

The Astrophysical Journal Letters American Astronomical Society 954:2 (2023) L42-L42

Authors:

WV Jacobson-Galán, L Dessart, R Margutti, R Chornock, RJ Foley, CD Kilpatrick, DO Jones, K Taggart, CR Angus, S Bhattacharjee, LA Braff, D Brethauer, AJ Burgasser, F Cao, CM Carlile, KC Chambers, DA Coulter, E Dominguez-Ruiz, CB Dickinson, T de Boer, A Gagliano, C Gall, H Gao, EL Gates, S Gomez

Abstract:

International audienceAbstract We present UV and/or optical observations and models of SN 2023ixf, a type II supernova (SN) located in Messier 101 at 6.9 Mpc. Early time ( flash ) spectroscopy of SN 2023ixf, obtained primarily at Lick Observatory, reveals emission lines of H i , He i/ii , C iv , and N iii/iv/v with a narrow core and broad, symmetric wings arising from the photoionization of dense, close-in circumstellar material (CSM) located around the progenitor star prior to shock breakout. These electron-scattering broadened line profiles persist for ∼8 days with respect to first light, at which time Doppler broadened the features from the fastest SN ejecta form, suggesting a reduction in CSM density at r ≳ 10 15 cm. The early time light curve of SN 2023ixf shows peak absolute magnitudes (e.g., M u = −18.6 mag, M g = −18.4 mag) that are ≳2 mag brighter than typical type II SNe, this photometric boost also being consistent with the shock power supplied from CSM interaction. Comparison of SN 2023ixf to a grid of light-curve and multiepoch spectral models from the non-LTE radiative transfer code CMFGEN and the radiation-hydrodynamics code HERACLES suggests dense, solar-metallicity CSM confined to r = (0.5–1) × 10 15 cm, and a progenitor mass-loss rate of M ̇ = 10 − 2 M ⊙ yr −1 . For the assumed progenitor wind velocity of v w = 50 km s −1 , this corresponds to enhanced mass loss (i.e., superwind phase) during the last ∼3–6 yr before explosion

AT 2022aedm and a New Class of Luminous, Fast-cooling Transients in Elliptical Galaxies

The Astrophysical Journal Letters American Astronomical Society 954:1 (2023) L28-L28

Authors:

M Nicholl, S Srivastav, MD Fulton, S Gomez, ME Huber, SR Oates, P Ramsden, L Rhodes, SJ Smartt, KW Smith, A Aamer, JP Anderson, FE Bauer, E Berger, T de Boer, KC Chambers, P Charalampopoulos, T-W Chen, RP Fender, M Fraser, H Gao, DA Green, L Galbany, BP Gompertz, M Gromadzki

Abstract:

We present the discovery and extensive follow-up of a remarkable fast-evolving optical transient, AT 2022aedm, detected by the Asteroid Terrestrial impact Last Alert Survey (ATLAS). In the ATLAS o band, AT 2022aedm exhibited a rise time of 9 & PLUSMN; 1 days, reaching a luminous peak with M g & AP; -22 mag. It faded by 2 mag in the g band during the next 15 days. These timescales are consistent with other rapidly evolving transients, though the luminosity is extreme. Most surprisingly, the host galaxy is a massive elliptical with negligible current star formation. Radio and X-ray observations rule out a relativistic AT 2018cow-like explosion. A spectrum in the first few days after explosion showed short-lived He ii emission resembling young core-collapse supernovae, but obvious broad supernova features never developed; later spectra showed only a fast-cooling continuum and narrow, blueshifted absorption lines, possibly arising in a wind with v & AP; 2700 km s-1. We identify two further transients in the literature (Dougie in particular, as well as AT 2020bot) that share similarities in their luminosities, timescales, color evolution, and largely featureless spectra and propose that these may constitute a new class of transients: luminous fast coolers. All three events occurred in passive galaxies at offsets of & SIM;4-10 kpc from the nucleus, posing a challenge for progenitor models involving massive stars or black holes. The light curves and spectra appear to be consistent with shock breakout emission, though this mechanism is usually associated with core-collapse supernovae. The encounter of a star with a stellar-mass black hole may provide a promising alternative explanation

FRB 20121102A: images of the bursts and the varying radio counterpart

Monthly Notices of the Royal Astronomical Society Oxford University Press (OUP) 525:3 (2023) 3626-3632

Authors:

L Rhodes, M Caleb, BW Stappers, A Andersson, MC Bezuidenhout, LN Driessen, I Heywood

Multiwavelength Observations of the Blazar PKS 0735+178 in Spatial and Temporal Coincidence with an Astrophysical Neutrino Candidate IceCube-211208A

The Astrophysical Journal American Astronomical Society 954:1 (2023) 70

Authors:

A Acharyya, CB Adams, A Archer, P Bangale, JT Bartkoske, P Batista, W Benbow, A Brill, JH Buckley, JL Christiansen, AJ Chromey, M Errando, A Falcone, Q Feng, GM Foote, L Fortson, A Furniss, G Gallagher, W Hanlon, D Hanna, O Hervet, CE Hinrichs, J Hoang, J Holder, TB Humensky, W Jin, P Kaaret, M Kertzman, M Kherlakian, D Kieda, TK Kleiner, N Korzoun, S Kumar, MJ Lang, M Lundy, G Maier, CE McGrath, MJ Millard, J Millis, CL Mooney, P Moriarty, R Mukherjee, S O’Brien, RA Ong, M Pohl, E Pueschel, J Quinn, K Ragan, PT Reynolds, D Ribeiro, E Roache, I Sadeh, AC Sadun, L Saha, M Santander, GH Sembroski, R Shang, M Splettstoesser, A Kaushik Talluri, JV Tucci, VV Vassiliev, A Weinstein, DA Williams, SL Wong, J Woo, The VERITAS Collaboration, F Aharonian, J Aschersleben, M Backes, V Barbosa Martins, R Batzofin, Y Becherini, D Berge, K Bernlöhr, B Bi, M Böttcher, C Boisson, J Bolmont, M de Bony de Lavergne, J Borowska, M Bouyahiaoui, F Bradascio, M Breuhaus, R Brose, F Brun, B Bruno, T Bulik, C Burger-Scheidlin, S Caroff, S Casanova, R Cecil, J Celic, M Cerruti, T Chand, S Chandra, A Chen, J Chibueze, O Chibueze, G Cotter, S Dai, J Damascene Mbarubucyeye, A Djannati-Ataï, A Dmytriiev, V Doroshenko, S Einecke, J-P Ernenwein, G Fichet de Clairfontaine, M Filipovic, G Fontaine, M Füßling, S Funk, S Gabici, S Ghafourizadeh, G Giavitto, D Glawion, JF Glicenstein, P Goswami, G Grolleron, L Haerer, JA Hinton, TL Holch, M Holler, D Horns, M Jamrozy, F Jankowsky, V Joshi, I Jung-Richardt, E Kasai, K Katarzyński, R Khatoon, B Khélifi, S Klepser, W Kluźniak, K Kosack, D Kostunin, RG Lang, S Le Stum, A Lemière, J-P Lenain, F Leuschner, T Lohse, A Luashvili, I Lypova, J Mackey, D Malyshev, V Marandon, P Marchegiani, A Marcowith, G Martí-Devesa, R Marx, A Mitchell, R Moderski, L Mohrmann, A Montanari, E Moulin, T Murach, K Nakashima, J Niemiec, A Priyana Noel, P O’Brien, L Olivera-Nieto, E de Ona Wilhelmi, M Ostrowski, S Panny, M Panter, G Peron, DA Prokhorov, G Pühlhofer, M Punch, A Quirrenbach, P Reichherzer, A Reimer, O Reimer, H Ren, M Renaud, F Rieger, B Rudak, E Ruiz-Velasco, V Sahakian, A Santangelo, M Sasaki, J Schäfer, F Schüssler, HM Schutte, U Schwanke, JNS Shapopi, A Specovius, S Spencer, Ł Stawarz, R Steenkamp, S Steinmassl, I Sushch, H Suzuki, T Takahashi, T Tanaka, R Terrier, C van Eldik, M Vecchi, J Veh, C Venter, J Vink, R White, A Wierzcholska, Yu Wun Wong, M Zacharias, D Zargaryan, AA Zdziarski, A Zech, S Zouari, N Żywucka, The HESS Collaboration, K Mori

Pulsar polarization: a partial-coherence model

Monthly Notices of the Royal Astronomical Society Oxford University Press 525:1 (2023) 840-853

Authors:

Lucy S Oswald, Aris Karastergiou, Simon Johnston

Abstract:

The population of radio pulsars is observed to demonstrate certain polarization properties not explained by the conventional picture of pulsar polarization, namely frequency evolution of polarization, deviations of the linear polarization angle from a curve of geometric origins, and the presence of features in the circular polarization. We present the partial-coherence model as a way to explain the co-occurrence of these features and to provide an origin for circular polarization in radio pulsar profiles. We describe the mathematics of the model and demonstrate how it can explain these observed features, both on a population level and for the idiosyncrasies of individual pulsars. The partial coherence model can account for complex polarization behaviour, enabling improved access to information about pulsar geometries. We discuss the scientific implications of this for our understanding of pulsar radio emission and propagation.