Constraining particle acceleration in Sgr A* with simultaneous GRAVITY, Spitzer, NuSTAR and Chandra observations
Abstract
We report the time-resolved spectral analysis of a bright near-infrared and moderate X-ray flare of Sgr A*. We obtained light curves in the -, -, and -bands in the mid- and near-infrared and in the and bands in the X-ray. The observed spectral slope in the near-infrared band is ; the spectral slope observed in the X-ray band is . We tested synchrotron and synchrotron self-Compton (SSC) scenarios. The observed near-infrared brightness and X-ray faintness, together with the observed spectral slopes, pose challenges for all models explored. We rule out a scenario in which the near-infrared emission is synchrotron emission and the X-ray emission is SSC. A one-zone model in which both the near-infrared and X-ray luminosity are produced by SSC and a model in which the luminosity stems from a cooled synchrotron spectrum can explain the flare. In order to describe the mean SED, both models require specific values of the maximum Lorentz factor , which however differ by roughly two orders of magnitude: the SSC model suggests that electrons are accelerated to , while cooled synchrotron model requires acceleration up to . The SSC scenario requires electron densities of much larger than typical ambient densities in the accretion flow, and thus require in an extraordinary accretion event. In contrast, assuming a source size of , the cooled synchrotron scenario can be realized with densities and magnetic fields comparable with the ambient accretion flow. For both models, the temporal evolution is regulated through the maximum acceleration factor , implying that sustained particle acceleration is required to explain at least a part of the temporal evolution of the flare.
Cite
@article{arxiv.2107.01096,
title = {Constraining particle acceleration in Sgr A* with simultaneous GRAVITY, Spitzer, NuSTAR and Chandra observations},
author = {R. Abuter and A. Amorim and M. Bauböck and F. Baganoff and J. P. Berge and H. Boyce and H. Bonnet and W. Brandner and Y. Clénet and R. Davies and P. T. de Zeeuw and J. Dexter and Y. Dallilar and A. Drescher and A. Eckart and F. Eisenhauer and G. G. Fazio and N. M. Förster Schreiber and K. Foster and C. Gammie and P. Garcia and F. Gao and E. Gendron and R. Genzel and G. Ghisellini and S. Gillessen and M. A. Gurwell and M. Habibi and D. Haggard and C. Hailey and F. A. Harrison and X. Haubois and G. Heißel and T. Henning and S. Hippler and J. L. Hora and M. Horrobin and A. Jiménez-Rosales and L. Jochum and L. Jocou and A. Kaufer and P. Kervella and S. Lacour and V. Lapeyrère and J. -B. Le Bouquin and P. Léna and P. J. Lowrance and D. Lutz and S. Markoff and K. Mori and M. R. Morris and J. Neilsen and M. Nowak and T. Ott and T. Paumard and K. Perraut and G. Perrin and G. Ponti and O. Pfuhl and S. Rabien and G. Rodríguez-Coira and J. Shangguan and T. Shimizu and S. Scheithauer and H. A. Smith and J. Stadler and D. K. Stern and O. Straub and C. Straubmeier and E. Sturm and L. J. Tacconi and F. Vincent and S. von Fellenberg and I. Waisberg and F. Widmann and E. Wieprecht and E. Wiezorrek and S. P. Willner and G. Witzel and J. Woillez and S. Yazici and A. Young and S. Zhang and G. Zins},
journal= {arXiv preprint arXiv:2107.01096},
year = {2021}
}
Comments
accepted for publication in Astronomy & Astrophysics; preview abstract shortened due to arXiv requirements