4.5 Article

Spectroscopic studies of non-volatile residue formed by photochemistry of solid C4N2: A model of condensed aerosol formation on Titan

期刊

ICARUS
卷 234, 期 -, 页码 81-90

出版社

ACADEMIC PRESS INC ELSEVIER SCIENCE
DOI: 10.1016/j.icarus.2014.02.016

关键词

Titan; Astrobiology; Ices, IR Spectroscopy; Photochemistry; Prebiotic environments

资金

  1. French National Program Environnements Planetaires et Origines de la Vie (EPOV)
  2. NASA Astrobiology Institute team Titan as a Prebiotic Chemical System
  3. Jet Propulsion Laboratory Director's Research and Development Fund
  4. JPL Research and Technology Development funding for the infrastructure of the Ice Spectroscopy Laboratory (ISL)
  5. Titan Organic Aerosol Spectroscopy and Chemistry (TOAST) Laboratory at JPL
  6. National Aeronautics and Space Administration

向作者/读者索取更多资源

Following our recent communication (Gudipati, M.S. et al. [2013]. Nat. Commun. 4, 1648. http://dx.doi.org/10.1038/ncomms2649) on the discovery of condensed-phase non-volatile polymeric material with similar spectral features as tholins, we present here a comprehensive spectroscopic study of photochemical formation of polymeric material from condensed dicyanoacetylene (C4N2) ice films. C4N2 is chosen as starting material for the laboratory simulations because of the detection of this and similar molecules (nitriles and cyanoacetylenes) in Titan's atmosphere. UV-Vis and infrared spectra obtained during long-wavelength (>300 nm) photon irradiation and subsequent warming of the ice films are used to analyze changes in C4N2 ice, evolution of tholins, and derive photopolymerization mechanisms. Our data analysis revealed that many processes occur during the photolysis of condensed Titan's aerosol analogs, including isomerization and polymerization leading to the formation of long-chain as well as aromatic cyclic polymer molecules. In the light of tremendous new data from the Cassini mission on the seasonal variations in Titan's atmosphere, our laboratory study and its results provide fresh insight into the formation and evolution of aerosols and haze in Titan's atmosphere. (c) 2014 Elsevier Inc. All rights reserved.

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