Learning mid-IR emission spectra of polycyclic aromatic hydrocarbon populations from observations.
暂无分享,去创建一个
Toulouse | Cnrs | O. Berné | C. Joblin | S. Foschino | U. Toulouse | Ups | Cnes | O. Bern'e | France | Christine Joblin Irap
[1] K. M. Merrill,et al. 8 to 13 micron spectra of NGC 7027, BD + 30$sup 0$3639, and NGC 6572 , 1973 .
[2] de T. Jong,et al. The Infrared Astronomical Satellite (IRAS) mission , 1984 .
[3] Alexander G. G. M. Tielens,et al. Polycyclic aromatic hydrocarbons and the unidentified infrared emission bands - Auto exhaust along the Milky Way , 1985 .
[4] D. Talbi,et al. Theoretical infrared spectra of some model polycyclic aromatic hydrocarbons: effect of ionization. , 1993, The Astrophysical journal.
[5] M. Vala,et al. Infrared frequencies and intensities for astrophysically important polycyclic aromatic hydrocarbon cations , 1993 .
[6] C. Joblin,et al. Spatial variation of the 3.29 and 3.40 micron emission bands within reflection nebulae and the photochemical evolution of methylated polycyclic aromatic hydrocarbons. , 1996, The Astrophysical journal.
[7] S. Sandford,et al. Hydrogenated Polycyclic Aromatic Hydrocarbons and the 2940 and 2850 Wavenumber (3.40 and 3.51 micron) Infrared Emission Features , 1996, The Astrophysical journal.
[8] C. Joblin,et al. Variations of the 8.6 and 11.3 μm Emission Bands within NGC 1333: Evidence for Polycyclic Aromatic Hydrocarbon Cations , 1996 .
[9] G. Sloan,et al. Variations in the 3 Micron Spectrum across the Orion Bar: Polycyclic Aromatic Hydrocarbons and Related Molecules , 1997, The Astrophysical journal.
[10] H. Sebastian Seung,et al. Learning the parts of objects by non-negative matrix factorization , 1999, Nature.
[11] D. Hudgins,et al. Interstellar PAH Emission in the 11-14 Micron Region: New Insightsfrom Laboratory Data and a Tracer of Ionized PAHs , 1999, The Astrophysical journal.
[12] E. Peeters,et al. The C-H out-of-plain bending modes of PAH molecules in astrophysical environments , 2001, astro-ph/0103035.
[13] J. Weingartner,et al. Dust Grain-Size Distributions and Extinction in the Milky Way, Large Magellanic Cloud, and Small Magellanic Cloud , 2001 .
[14] C. Bauschlicher,et al. The rich 6 to 9m spectrum of interstellar PAHs , 2002 .
[15] The rich 6 to 9 vec mu m spectrum of interstellar PAHs , 2002, astro-ph/0205400.
[16] C. Joblin,et al. The profiles of the aromatic infrared bands explained with molecular carriers , 2002 .
[17] H. Rix,et al. The James Webb Space Telescope , 2006, astro-ph/0606175.
[18] S. Price,et al. A Uniform Database of 2.4-45.4 Micron Spectra from the Infrared Space Observatory Short Wavelength Spectrometer , 2003 .
[19] E. Wright,et al. The Spitzer Space Telescope Mission , 2004, astro-ph/0406223.
[20] C. Joblin,et al. Spectroscopy of polycyclic aromatic hydrocarbons and very small grains in photodissociation regions , 2005 .
[21] D. Hudgins,et al. Variations in the Peak Position of the 6.2 μm Interstellar Emission Feature: A Tracer of N in the Interstellar Polycyclic Aromatic Hydrocarbon Population , 2005 .
[22] Yannick Deville,et al. A time-frequency blind signal separation method applicable to underdetermined mixtures of dependent sources , 2005, Signal Process..
[23] C. Joblin,et al. A general model for the identification of specific PAHs in the far-IR , 2006, astro-ph/0606264.
[24] Diagnostics for specific PAHs in the far-IR: Searching neutral naphthalene and anthracene in the Red Rectangle , 2006, astro-ph/0605411.
[25] C. Joblin,et al. On-line database of the spectral properties of polycyclic aromatic hydrocarbons , 2007 .
[26] A. Abergel,et al. Aromatic emission from the ionised mane of the Horsehead nebula , 2007, 0706.1510.
[27] Jr.,et al. The Mid-Infrared Spectrum of Star-forming Galaxies: Global Properties of Polycyclic Aromatic Hydrocarbon Emission , 2006, astro-ph/0610913.
[28] C. Joblin,et al. Analysis of the emission of very small dust particles from Spitzer spectro-imagery data using blind signal separation methods , 2007 .
[29] S. Oh,et al. The infrared astronomical mission AKARI , 2007, 0708.1796.
[30] Chih-Jen Lin,et al. Projected Gradient Methods for Nonnegative Matrix Factorization , 2007, Neural Computation.
[31] The 5.25&5.7 $\mu$m Astronomical Polycyclic Aromatic Hydrocarbon Emission Features , 2008, 0809.1619.
[32] E. Peeters,et al. Variations of the Mid-IR Aromatic Features inside and among Galaxies , 2008, 0801.4955.
[33] O. Berné,et al. Carriers of the mid-IR emission bands in PNe reanalysed. Evidence of a link between circumstellar an , 2008, 0809.1532.
[34] C. Joblin,et al. Signature of [SiPAH]+ π-complexes in the interstellar medium , 2008, 0811.2949.
[35] C. Bauschlicher,et al. THE 5.25 AND 5.7 μm ASTRONOMICAL POLYCYCLIC AROMATIC HYDROCARBON EMISSION FEATURES , 2009 .
[36] C. Bauschlicher,et al. THE INFRARED SPECTRA OF VERY LARGE IRREGULAR POLYCYCLIC AROMATIC HYDROCARBONS (PAHs): OBSERVATIONAL PROBES OF ASTRONOMICAL PAH GEOMETRY, SIZE, AND CHARGE , 2009, 0903.0412.
[37] C. Joblin,et al. THE COMPUTED INFRARED SPECTRA OF A VARIETY OF [FePAH]+ COMPLEXES: MID- AND FAR-INFRARED FEATURES , 2010 .
[38] C. Bauschlicher,et al. THE NASA AMES POLYCYCLIC AROMATIC HYDROCARBON INFRARED SPECTROSCOPIC DATABASE: THE COMPUTED SPECTRA , 2010 .
[39] O. Bern'e,et al. Coupled blind signal separation and spectroscopic database fitting of the mid-infrared PAH features (Corrigendum) , 2011, 1106.5899.
[40] C. Joblin,et al. Evaporating very small grains as tracers of the UV radiation field in photo-dissociation regions , 2012, 1204.4669.
[41] M. Steglich,et al. THE ABUNDANCES OF HYDROCARBON FUNCTIONAL GROUPS IN THE INTERSTELLAR MEDIUM INFERRED FROM LABORATORY SPECTRA OF HYDROGENATED AND METHYLATED POLYCYCLIC AROMATIC HYDROCARBONS , 2013, 1308.4080.
[42] C. Boersma,et al. PROPERTIES OF POLYCYCLIC AROMATIC HYDROCARBONS IN THE NORTHWEST PHOTON DOMINATED REGION OF NGC 7023. I. PAH SIZE, CHARGE, COMPOSITION, AND STRUCTURE DISTRIBUTION , 2013 .
[43] Evolution of polycyclic aromatic hydrocarbons in photodissociation regions , 2013 .
[44] A. Lançon,et al. SF2A-2013: Proceedings of the Annual meeting of the French Society of Astronomy and Astrophysics , 2013 .
[45] C. Joblin,et al. Evolution of PAHs in photodissociation regions: Hydrogenation and charge states , 2013, 1301.6507.
[46] C. Bauschlicher,et al. THE NASA AMES PAH IR SPECTROSCOPIC DATABASE VERSION 2.00: UPDATED CONTENT, WEB SITE, AND ON(OFF)LINE TOOLS , 2014 .
[47] P. Sarre,et al. The 11.2 μm emission of PAHs in astrophysical objects , 2015, 1501.06811.
[48] T. Onaka,et al. Mixed aliphatic and aromatic composition of evaporating very small grains in NGC 7023 revealed by the 3.4/3.3 μm ratio. , 2015, Astronomy and astrophysics.
[49] H. Kaneda,et al. AKARI/IRC NEAR-INFRARED SPECTRAL ATLAS OF GALACTIC PLANETARY NEBULAE , 2016, 1604.00884.
[50] S. Sadjadi,et al. THE 6 μm FEATURE AS A TRACER OF ALIPHATIC COMPONENTS OF INTERSTELLAR CARBONACEOUS GRAINS , 2016, 1607.07585.
[51] Jr.,et al. The PAH Emission Characteristics of the Reflection Nebula NGC 2023 , 2017, 1701.06585.
[52] C. Bauschlicher,et al. The NASA Ames PAH IR Spectroscopic Database: Computational Version 3.00 with Updated Content and the Introduction of Multiple Scaling Factors , 2018 .
[53] A. Jones,et al. The Interstellar Dust Properties of Nearby Galaxies , 2017, Annual Review of Astronomy and Astrophysics.