English

Accreting Circumplanetary Disks: Observational Signatures

Earth and Planetary Astrophysics 2015-06-22 v2

Abstract

I calculate the spectral energy distributions (SEDs) of accreting circumplanetary disks using atmospheric radiative transfer models. Circumplanetary disks only accreting at 1010Myr110^{-10} M_{\odot} yr^{-1} around a 1 MJ_{J} planet can be brighter than the planet itself. A moderately accreting circumplanetary disk (M˙108Myr1\dot{M}\sim 10^{-8}M_{\odot} yr^{-1}; enough to form a 10 MJ_{J} planet within 1 Myr) around a 1 MJ_{J} planet has a maximum temperature of \sim2000 K, and at near-infrared wavelengths (JJ, HH, KK bands), this disk is as bright as a late M-type brown dwarf or a 10 MJ_{J} planet with a "hot start". To use direct imaging to find the accretion disks around low mass planets (e.g., 1 MJ_{J}) and distinguish them from brown dwarfs or hot high mass planets, it is crucial to obtain photometry at mid-infrared bands (LL', MM, NN bands) because the emission from circumplanetary disks falls off more slowly towards longer wavelengths than those of brown dwarfs or planets. If young planets have strong magnetic fields (\gtrsim100 G), fields may truncate slowly accreting circumplanetary disks (M˙109Myr1\dot{M}\lesssim10^{-9} M_{\odot} yr^{-1}) and lead to magnetospheric accretion, which can provide additional accretion signatures, such as UV/optical excess from the accretion shock and line emission.

Keywords

Cite

@article{arxiv.1408.6554,
  title  = {Accreting Circumplanetary Disks: Observational Signatures},
  author = {Zhaohuan Zhu},
  journal= {arXiv preprint arXiv:1408.6554},
  year   = {2015}
}

Comments

10 pages, 3 figures, Accepted by ApJ