English

Synchrotron Afterglow Model for AT 2022cmc: Jetted Tidal Disruption Event or Engine-Powered Supernova?

High Energy Astrophysical Phenomena 2023-05-03 v2

Abstract

AT 2022cmc is a luminous optical transient (νLν1045\nu L_{\nu} \gtrsim 10^{45} erg s1^{-1}) accompanied by decaying non-thermal X-rays (peak duration tXt_{\rm X} \lesssim days and isotropic energy EX,iso1053E_{\rm X,iso} \gtrsim 10^{53} erg) and a long-lived radio/mm synchrotron afterglow, which has been interpreted as a jetted tidal disruption event (TDE). Both an equipartition analysis and a detailed afterglow model reveals the radio/mm emitting plasma to be expanding mildly relativistically (Lorentz factor Γfew\Gamma \gtrsim\,few) with an opening angle θj0.1\theta_{\rm j}\simeq0.1 and roughly fixed energy Ej,isofew×1053E_{\rm j,iso} \gtrsim few \times 10^{53} erg into an external medium of density profile nRkn \propto R^{-k} with k1.52k \simeq 1.5-2, broadly similar to that of the first jetted TDE candidate Swift J1644+57 and consistent with Bondi accretion at a rate 103M˙Edd\sim 10^{-3}\dot{M}_{\rm Edd} onto a 106M10^{6}M_{\odot} black hole before the outburst. The rapidly decaying optical emission over the first days is consistent with fast-cooling synchrotron radiation from the same forward shock as the radio/mm emission, while the bluer slowly decaying phase to follow likely represents a separate thermal emission component. Emission from the reverse shock may have peaked during the first days, but whose non-detection in the optical band places an upper bound Γj100\Gamma_{\rm j} \lesssim 100 on the Lorentz factor of the unshocked jet. Although a TDE origin for AT 2022cmc is indeed supported by some observations, the vast difference between the short-lived jet activity phase tXt_{\rm X} \lesssim days relative to the months-long thermal optical emission, also challenges this scenario. A stellar core-collapse event giving birth to a magnetar or black hole engine of peak duration 1\sim 1 day offers an alternative model also consistent with the circumburst environment, if interpreted as a massive-star wind.

Keywords

Cite

@article{arxiv.2301.11939,
  title  = {Synchrotron Afterglow Model for AT 2022cmc: Jetted Tidal Disruption Event or Engine-Powered Supernova?},
  author = {Tatsuya Matsumoto and Brian D. Metzger},
  journal= {arXiv preprint arXiv:2301.11939},
  year   = {2023}
}

Comments

11 pages, 9 figures, 2 tables, accepted for publication in MNRAS