Light-Curve Structure and Halpha Line Formation in the Tidal Disruption Event AT 2019azh

Fuente: arXiv
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Autores principales: Faris, Sara, Arcavi, Iair, Makrygianni, Lydia, Hiramatsu, Daichi, Terreran, Giacomo, Farah, Joseph, Howell, D. Andrew, McCully, Curtis, Newsome, Megan, Gonzalez, Estefania Padilla, Pellegrino, Craig, Bostroem, K. Azalee, Abojanb, Wiam, Lam, Marco C., Tomasella, Lina, Brink, Thomas G., Filippenko, Alexei V., French, K. Decker, Clark, Peter, Graur, Or, Leloudas, Giorgos, Gromadzki, Mariusz, Anderson, Joseph P., Nicholl, Matt, Gutierrez, Claudia P., Kankare, Erkki, Inserra, Cosimo, Galbany, Luis, Reynolds, Thomas, Mattila, Seppo, Heikkila, Teppo, Wang, Yanan, Onori, Francesca, Wevers, Thomas, Charalampopoulos, Panos, Johansson, Joel
Formato: Preprint
Publicado: 2023
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author Faris, Sara
Arcavi, Iair
Makrygianni, Lydia
Hiramatsu, Daichi
Terreran, Giacomo
Farah, Joseph
Howell, D. Andrew
McCully, Curtis
Newsome, Megan
Gonzalez, Estefania Padilla
Pellegrino, Craig
Bostroem, K. Azalee
Abojanb, Wiam
Lam, Marco C.
Tomasella, Lina
Brink, Thomas G.
Filippenko, Alexei V.
French, K. Decker
Clark, Peter
Graur, Or
Leloudas, Giorgos
Gromadzki, Mariusz
Anderson, Joseph P.
Nicholl, Matt
Gutierrez, Claudia P.
Kankare, Erkki
Inserra, Cosimo
Galbany, Luis
Reynolds, Thomas
Mattila, Seppo
Heikkila, Teppo
Wang, Yanan
Onori, Francesca
Wevers, Thomas
Charalampopoulos, Panos
Johansson, Joel
author_facet Faris, Sara
Arcavi, Iair
Makrygianni, Lydia
Hiramatsu, Daichi
Terreran, Giacomo
Farah, Joseph
Howell, D. Andrew
McCully, Curtis
Newsome, Megan
Gonzalez, Estefania Padilla
Pellegrino, Craig
Bostroem, K. Azalee
Abojanb, Wiam
Lam, Marco C.
Tomasella, Lina
Brink, Thomas G.
Filippenko, Alexei V.
French, K. Decker
Clark, Peter
Graur, Or
Leloudas, Giorgos
Gromadzki, Mariusz
Anderson, Joseph P.
Nicholl, Matt
Gutierrez, Claudia P.
Kankare, Erkki
Inserra, Cosimo
Galbany, Luis
Reynolds, Thomas
Mattila, Seppo
Heikkila, Teppo
Wang, Yanan
Onori, Francesca
Wevers, Thomas
Charalampopoulos, Panos
Johansson, Joel
contents AT 2019azh is a H+He tidal disruption event (TDE) with one of the most extensive ultraviolet and optical data sets available to date. We present our photometric and spectroscopic observations of this event starting several weeks before and out to approximately two years after the g-band peak brightness and combine them with public photometric data. This extensive data set robustly reveals a change in the light-curve slope and a possible bump in the rising light curve of a TDE for the first time, which may indicate more than one dominant emission mechanism contributing to the pre-peak light curve. Indeed, we find that the MOSFiT-derived parameters of AT 2019azh, which assume reprocessed accretion as the sole source of emission, are not entirely self-consistent. We further confirm the relation seen in previous TDEs whereby the redder emission peaks later than the bluer emission. The post-peak bolometric light curve of AT 2019azh is better described by an exponential decline than by the canonical t^{-5/3} (and in fact any) power-law decline. We find a possible mid-infrared excess around the peak optical luminosity, but cannot determine its origin. In addition, we provide the earliest measurements of the Halpha emission-line evolution and find no significant time delay between the peak of the V-band light curve and that of the Halpha luminosity. These results can be used to constrain future models of TDE line formation and emission mechanisms in general. More pre-peak 1-2 days cadence observations of TDEs are required to determine whether the characteristics observed here are common among TDEs. More importantly, detailed emission models are needed to fully exploit such observations for understanding the emission physics of TDEs.
format Preprint
id arxiv_https___arxiv_org_abs_2312_03842
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Light-Curve Structure and Halpha Line Formation in the Tidal Disruption Event AT 2019azh
Faris, Sara
Arcavi, Iair
Makrygianni, Lydia
Hiramatsu, Daichi
Terreran, Giacomo
Farah, Joseph
Howell, D. Andrew
McCully, Curtis
Newsome, Megan
Gonzalez, Estefania Padilla
Pellegrino, Craig
Bostroem, K. Azalee
Abojanb, Wiam
Lam, Marco C.
Tomasella, Lina
Brink, Thomas G.
Filippenko, Alexei V.
French, K. Decker
Clark, Peter
Graur, Or
Leloudas, Giorgos
Gromadzki, Mariusz
Anderson, Joseph P.
Nicholl, Matt
Gutierrez, Claudia P.
Kankare, Erkki
Inserra, Cosimo
Galbany, Luis
Reynolds, Thomas
Mattila, Seppo
Heikkila, Teppo
Wang, Yanan
Onori, Francesca
Wevers, Thomas
Charalampopoulos, Panos
Johansson, Joel
High Energy Astrophysical Phenomena
AT 2019azh is a H+He tidal disruption event (TDE) with one of the most extensive ultraviolet and optical data sets available to date. We present our photometric and spectroscopic observations of this event starting several weeks before and out to approximately two years after the g-band peak brightness and combine them with public photometric data. This extensive data set robustly reveals a change in the light-curve slope and a possible bump in the rising light curve of a TDE for the first time, which may indicate more than one dominant emission mechanism contributing to the pre-peak light curve. Indeed, we find that the MOSFiT-derived parameters of AT 2019azh, which assume reprocessed accretion as the sole source of emission, are not entirely self-consistent. We further confirm the relation seen in previous TDEs whereby the redder emission peaks later than the bluer emission. The post-peak bolometric light curve of AT 2019azh is better described by an exponential decline than by the canonical t^{-5/3} (and in fact any) power-law decline. We find a possible mid-infrared excess around the peak optical luminosity, but cannot determine its origin. In addition, we provide the earliest measurements of the Halpha emission-line evolution and find no significant time delay between the peak of the V-band light curve and that of the Halpha luminosity. These results can be used to constrain future models of TDE line formation and emission mechanisms in general. More pre-peak 1-2 days cadence observations of TDEs are required to determine whether the characteristics observed here are common among TDEs. More importantly, detailed emission models are needed to fully exploit such observations for understanding the emission physics of TDEs.
title Light-Curve Structure and Halpha Line Formation in the Tidal Disruption Event AT 2019azh
topic High Energy Astrophysical Phenomena
url https://arxiv.org/abs/2312.03842