# 2010A&A...510A..85T

 other querymodes : Identifierquery Coordinatequery Criteriaquery Referencequery Basicquery Scriptsubmission TAP Outputoptions Help

 Query : 2010A&A...510A..85T

2010A&A...510A..85T - Astronomy and Astrophysics, volume 510, A85-85 (2010/2-1)

The abundance of HNCO and its use as a diagnostic of environment.

TIDESWELL D.M., FULLER G.A., MILLAR T.J. and MARKWICK A.J.

Abstract (from CDS):

We aim to investigate the chemistry and gas phase abundance of HNCO and the variation of the HNCO/CS abundance ratio as a diagnostic of the physics and chemistry in regions of massive star formation. A numerical-chemical model has been developed which self-consistently follows the chemical evolution of a hot core. The model comprises of two distinct stages. The first stage follows the isothermal, modified free-fall collapse of a molecular dark cloud. This is immediately followed by an increase in temperature which represents the switch on of a central massive star and the subsequent evolution of the chemistry in a hot, dense gas cloud (the hot core). During the collapse phase, gas species are allowed to accrete on to grain surfaces where they can participate in further reactions. During the hot core phase surface species thermally desorb back in to the ambient gas and further chemical evolution takes place. For comparison, the chemical network was also used to model a simple dark cloud and photodissociation regions. Our investigation reveals that HNCO is inefficiently formed when only gas-phase formation pathways are considered in the chemical network with reaction rates consistent with existing laboratory data. This is particularly true at low temperatures but also in regions with temperatures up to ∼200K. Using currently measured gas phase reaction rates, obtaining the observed HNCO abundances requires its formation on grain surfaces - similar to other hot core'' species such as CH3OH. However our model shows that the gas phase HNCO in hot cores is not a simple direct product of the evaporation of grain mantles. We also show that the HNCO/CS abundance ratio varies as a function of time in hot cores and can match the range of values observed. This ratio is not unambiguously related to the ambient UV field as been suggested - our results are inconsistent with the hypothesis of Martin et al. (2008ApJ...678..245M). In addition, our results show that this ratio is extremely sensitive to the initial sulphur abundance. We find that the ratio grows monotonically with time with an absolute value which scales approximately linearly with the S abundance at early times.

Journal keyword(s): astrochemistry - stars: formation

Full paper

 Number of rows : 6
N Identifier Otype ICRS (J2000)
RA
ICRS (J2000)
DEC
Mag U Mag B Mag V Mag R Mag I Sp type #ref
1850 - 2023
#notes
1 W 3(H2O) Mas 02 27 04.6 +61 52 25           ~ 137 0
2 TMC-1 MoC 04 41 45.9 +25 41 27           ~ 1560 0
3 NAME Horsehead Nebula DNe 05 40 59.0 -02 27 30           ~ 491 0
4 NAME Galactic Center reg 17 45 39.60213 -29 00 22.0000           ~ 13329 0
5 NAME Sgr B2 MoC 17 47 20.4 -28 23 07           ~ 2135 1
6 OH 34.26 +0.15 SFR 18 53 18.54 +01 14 57.9           ~ 488 0

To bookmark this query, right click on this link: simbad:objects in 2010A&A...510A..85T and select 'bookmark this link' or equivalent in the popup menu

2022.12.07-00:22:46