Molecular clouds photoevaporation and FIR line emission
arXiv:1606.08464 · doi:10.1093/mnras/stx180
Abstract
With the aim of improving predictions on far infrared (FIR) line emission from Giant Molecular Clouds (GMC), we study the effects of photoevaporation (PE) produced by external far-ultraviolet (FUV) and ionizing (extreme-ultraviolet, EUV) radiation on GMC structure. We consider three different GMCs with mass in the range . Our model includes: (i) an observationally-based inhomogeneous GMC density field, and (ii) its time evolution during the PE process. In the fiducial case (), the photoevaporation time () increases from 1 Myr to 30 Myr for gas metallicity , respectively. Next, we compute the time-dependent luminosity of key FIR lines tracing the neutral and ionized gas layers of the GMCs, ([CII] at , [OIII] at ) as a function of , and until complete photoevaporation at . We find that the specific [CII] luminosity is almost independent on the GMC model within the survival time of the cloud. Stronger FUV fluxes produce higher [CII] and [OIII] luminosities, however lasting for progressively shorter times. At the [CII] emission is maximized ( for the fiducial model) for and . Noticeably, and consistently with the recent detection by Inoue et al. (2016) of a galaxy at redshift , for the [OIII] line might outshine [CII] emission by up to times. We conclude that the [OIII] line is a key diagnostic of low metallicity ISM, especially in galaxies with very young stellar populations.
14 pages, 11 figures, accepted for publication in MNRAS