Literature DB >> 11540158

The 2140 cm-1 (4.673 microns) solid CO band: the case for interstellar O2 and N2 and the photochemistry of nonpolar interstellar ice analogs.

J Elsila1, L J Allamandola, S A Sandford.   

Abstract

The infrared spectra of CO frozen in nonpolar ices containing N2, CO2, O2, and H2O and the UV photochemistry of these interstellar/precometary ice analogs are reported. The spectra are used to test the hypothesis that the narrow 2140 cm-1 (4.673 microns) interstellar absorption feature attributed to solid CO might be produced by CO frozen in ices containing nonpolar species such as N2 and O2. It is shown that mixed molecular ices containing CO, N2, O2, and CO2 provide a good match to the interstellar band at all temperatures between 12 and 30 K both before and after photolysis. The optical constants (real and imaginary parts of the index of refraction) in the region of the solid CO feature are reported for several of these ices. The N2 and O2 absorptions at 2328 cm-1 (4.296 microns) and 1549 cm-1 (6.456 microns), respectively, are also shown. The best matches between the narrow interstellar band and the feature in the laboratory spectra of nonpolar ices are for samples which contain comparable amounts of N2, O2, CO2, and CO. Co-adding the CO band from an N2:O2:CO2:CO = 1:5:1/2:1 ice with that of an H2O:CO = 20:1 ice provides an excellent fit across the entire interstellar CO feature. The four-component, nonpolar ice accounts for the narrow 2140 cm-1 portion of the feature which is associated with quiescent regions of dense molecular clouds. Using this mixture, and applying the most recent cosmic abundance values, we derive that between 15% and 70% of the available interstellar N is in the form of frozen N2 along several lines of sight toward background stars. This is reduced to a range of 1%-30% for embedded objects with lines of sight more dominated by warmer grains. The cosmic abundance of O tied up in frozen O2 lies in the 10%-45% range toward background sources, and it is between 1% and 20% toward embedded objects. The amount of oxygen tied up in CO and CO2 frozen in nonpolar ices can be as much as 2%-10% toward background sources and on the order of 0.2%-5% for embedded objects. Similarly 3%-13% of the carbon is tied up in CO and CO2 frozen in nonpolar ices toward field stars, and 0.2%-6% toward embedded objects. These numbers imply that most of the N is in N2, and a significant fraction of the available O is in O2 in the most quiescent regions of dense clouds. Ultraviolet photolysis of these ices produces a variety of photoproducts including CO2, N2O, O3, CO3, HCO, H2CO, and possibly NO and NO2. XCN is not produced in these experiments, placing important constraints on the origin of the enigmatic interstellar XCN feature. N2O and CO3 have not been previously considered as interstellar ice components.

Entities:  

Keywords:  NASA Center ARC; NASA Discipline Exobiology

Mesh:

Substances:

Year:  1997        PMID: 11540158     DOI: 10.1086/303906

Source DB:  PubMed          Journal:  Astrophys J        ISSN: 0004-637X            Impact factor:   5.874


  6 in total

1.  High-pressure photodissociation of water as a tool for hydrogen synthesis and fundamental chemistry.

Authors:  Matteo Ceppatelli; Roberto Bini; Vincenzo Schettino
Journal:  Proc Natl Acad Sci U S A       Date:  2009-07-06       Impact factor: 11.205

2.  Interstellar ices as a source of CN-bearing molecules in protoplanetary disks.

Authors:  D C Whittet; E L Gibb; A Nummelin
Journal:  Orig Life Evol Biosph       Date:  2001 Feb-Apr       Impact factor: 1.950

3.  Spectroscopic constraints on CH3OH formation: CO mixed with CH3OH ices towards young stellar objects.

Authors:  E M Penteado; A C A Boogert; K M Pontoppidan; S Ioppolo; G A Blake; H M Cuppen
Journal:  Mon Not R Astron Soc       Date:  2015-09-22       Impact factor: 5.287

4.  An evolutionary system of mineralogy. Part II: Interstellar and solar nebula primary condensation mineralogy (>4.565 Ga).

Authors:  Shaunna M Morrison; Robert M Hazen
Journal:  Am Mineral       Date:  2020-10-29       Impact factor: 3.003

5.  Perchlorate-Coupled Carbon Monoxide (CO) Oxidation: Evidence for a Plausible Microbe-Mediated Reaction in Martian Brines.

Authors:  Marisa R Myers; Gary M King
Journal:  Front Microbiol       Date:  2017-12-22       Impact factor: 5.640

6.  Directed gas phase formation of silicon dioxide and implications for the formation of interstellar silicates.

Authors:  Tao Yang; Aaron M Thomas; Beni B Dangi; Ralf I Kaiser; Alexander M Mebel; Tom J Millar
Journal:  Nat Commun       Date:  2018-02-22       Impact factor: 14.919

  6 in total

北京卡尤迪生物科技股份有限公司 © 2022-2023.