HIGH RESOLUTION SPECTROSCOPY OF THE CARBON CAGE ADAMANTANE C10H16

Slides:



Advertisements
Similar presentations
Complementary Use of Modern Spectroscopy and Theory in the Study of Rovibrational Levels of BF 3 Robynne Kirkpatrick a, Tony Masiello b, Alfons Weber c,
Advertisements

High sensitivity CRDS of the a 1 ∆ g ←X 3 Σ − g band of oxygen near 1.27 μm: magnetic dipole and electric quadrupole transitions in different bands of.
Yu. I. BARANOV and W. J. LAFFERTY Optical Technology Division Optical Technology Division National Institute of Standards and Technology, Gaithersburg,
Submillimeter-wave and far-infrared spectroscopy of high-J transitions of ammonia S. Yu, J.C. Pearson, B.J. Drouin and K. Sung Jet Propulsion Laboratory,
Coherent Synchrotron Radiation for Rotational Spectroscopy : application to Propynal in the GHz range J.Barros P.Roy L.Manceron SOLEIL - AILES.
Mathematical Methods for Ab Initio Quantum Chemistry Nice October 20–21, 2006 Symmetry-Adapted Tensorial Formalism to Model Rovibrational and Rovibronic.
HIGH-RESOLUTION ANALYSIS OF VARIOUS PROPANE BANDS: MODELING OF TITAN'S INFRARED SPECTRUM J.-M. Flaud.
High-Lying Rotational Levels of Water obtained by FIR Emission Spectroscopy L. H. Coudert, a M.-A. Martin, b O. Pirali, b D. Balcon, b and M. Vervloet.
S&MPO linelist of 16 O 3 in the range 6000 – 7000 cm -1. M.-R. De Backer-Barilly #, Semen N. Mikhailenko*, Yurii Babikov*, Alain Campargue §, Samir Kassi.
A. Barbe, M.R. De Backer-Barilly, Vl.G. Tyuterev, A. Campargue 1, S.Kassi 1 Updated line-list of 16 O 3 in the range 5860 – 7000 cm -1 deduced from CRDS.
9th Biennal HITRAN Conference Harvard-Smithsonian Center for Astrophysics June 26–28, 2006 GLOBAL FREQUENCY AND INFRARED INTENSITY ANALYSIS OF 12 CH 4.
 ( ) 0+   ( ) 0–  4 1 Results at 2.5 microns 2 +( ) 1 II (
First high resolution analysis of the 5 3 band of nitrogen dioxide (NO 2 ) near 1.3 µm Didier Mondelain 1, Agnès Perrin 2, Samir Kassi 1 & Alain Campargue.
Columbus 2005, 20/6/ /6/05 ANALYSIS OF THE 3 / 7 / 9 BENDING TRIAD OF THE QUASI-SPHERICAL TOP MOLECULE SO 2 F 2 M. Rotger, V. Boudon, M. Lo ë te,
Rovibrational Phase- Space Surfaces for Analysis of the υ 3 /2 υ 4 Polyad Band of CF 4 Justin Mitchell, William Harter, University of Arkansas Vincent.
66th Ohio State University Symposium on Molecular Spectroscopy June 20–24, 2011 HIGH RESOLUTION SPECTROSCOPY AND GLOBAL ANALYSIS OF THE TETRADECAD REGION.
11 The THz spectrum of GlycolAldehyde M. Goubet, T.R. Huet, I. Haykal, L. Margulès PhLAM, CNRS – Université de Lille 1 O. Pirali, P. Roy AILES beamline,
High Resolution Measurements and Electronic Structure Calculations of a Diazanaphthalene: [1,6]-naphthyridine. Sébastien Gruet, Manuel Goubet, Olivier.
Columbus, June , 2005 Stark Effect in X 2 Y 4 Molecules: Application to Ethylene M. ROTGER, W. RABALLAND, V. BOUDON, and M. LOËTE Laboratoire de.
O. Pirali, S. Gruet, M. Vervloet AILES beamline, synchrotron SOLEIL
Emission Spectra of H 2 17 O and H 2 18 O from 320 to 2500 cm -1 Semen MIKHAILENKO 1, Georg MELLAU 2, and Vladimir TYUTEREV 3 1 Laboratory of Theoretical.
Arnaud Cuisset, G. Mouret, R. Bocquet, F. Hindle Laboratoire de Physico-Chimie de l’Atmosphere, Université du Littoral Côte d’Opale, Dunkerque, France.
69 th International Symposium on Molecular Spectroscopy / Champaign-Urbana, Illinois, USA, June 16–20, 2014 HIGH-RESOLUTION INFRARED SPECTROSCOPY OF CUBANE,
Methyl Bromide : Spectroscopic line parameters in the 7- and 10-μm region D. Jacquemart 1, N. Lacome 1, F. Kwabia-Tchana 1, I. Kleiner 2 1 Laboratoire.
High-resolution spectroscopy of nitrous acid (HONO) and its deuterated species (DONO) in the far- and mid-IR spectral regions A. Dehayem-Kamadjeu, J. Orphal,
Methyl Bromide : Spectroscopic line parameters in the 10-μm region D. Jacquemart 1, N. Lacome 1, F. Kwabia-Tchana 1, I. Kleiner 2 1 Laboratoire de Dynamique,
Synchrotron-Based High Resolution Spectroscopy of N-Bearing PAHs Sébastien Gruet, Olivier Pirali, Manuel Goubet and P. Bréchignac ISMS /06/2014.
68th Ohio State University Symposium on Molecular Spectroscopy June 17–21, 2013 SF 6 THE FORBIDDEN BAND UNVEILED V. BOUDON, Laboratoire Interdisciplinaire.
Rotational spectroscopy of two telluric compounds : vinyl- and ethyl-tellurols R.A. MOTIYENKO, L. MARGULES, M. GOUBET Laboratoire PhLAM, CNRS UMR 8523,
61th Ohio State University Symposium on Molecular Spectroscopy June 19–23, 2006 GLOBAL FREQUENCY AND INFRARED INTENSITY ANALYSIS OF 12 CH 4 LINES IN THE.
66th OSU International symposium on molecular spectroscopy
New 12 C 2 H 2 measurements using synchrotron SOLEIL David Jacquemart, Nelly Lacome, Olivier Piralli 66th OSU international symposium on molecular spectroscopy.
Rotationally-Resolved Spectroscopy of the Bending Modes of Deuterated Water Dimer JACOB T. STEWART AND BENJAMIN J. MCCALL DEPARTMENT OF CHEMISTRY, UNIVERSITY.
64th Ohio State University Symposium on Molecular Spectroscopy June 22–26, 2009 THE HIGH RESOLUTION FAR- INFRARED SPECTRUM OF METHANE AT THE SOLEIL SYNCHROTRON.
69 th International Symposium on Molecular Spectroscopy / Champaign-Urbana, Illinois, USA, June 16–20, 2014 CH 4, C 2 H 4, SF 6 AND CF 4 CALCULATED SPECTROSCOPIC.
60th Ohio State University Symposium on Molecular Spectroscopy June 20–24, 2005 XTDS: A Java-Based Interface to Analyze and Simulate Spectra of Various.
HIGH RESOLUTION SPECTROSCOPY OF THE TWO LOWEST VIBRATIONAL STATES OF QUINOLINE C 9 H 7 N O. PIRALI, Z. KISIEL, M. GOUBET, S. GRUET, M.-A. MARTIN-DRUMEL,
D. Zhao, K. Doney, J. Guss, A. Walsh, H. Linnartz Sackler Laboratory for Astrophysics, Leiden Observatory, University of Leiden, the Netherlands (Presented.
66th Ohio State University Symposium on Molecular Spectroscopy June 20–24, 2011 HIGH RESOLUTION SPECTROSCOPY AND PRELIMINARY ANALYSIS OF C–H STRETCHING.
65th Ohio State University Symposium on Molecular Spectroscopy June 21–25, 2010 Stark spectrum simulation of X 2 Y 4 asymmetric molecules: application.
Beamline AILES : Mid IR to THz Spectroscopy The AILES Infrared and THz High Resolution Spectroscopy beamline at SOLEIL (Saclay, 30 km south of Paris) –
68th Ohio State University Symposium on Molecular Spectroscopy June 17–21, 2013 Frequency Analysis of the 10 μm Region of the Ethylene Spectrum using the.
62th Ohio State University Symposium on Molecular Spectroscopy June 18–22, 2007 RECENT APPLICATIONS AND FUTURE PROSPECTS OF METHANE SPECTROSCOPY TO THE.
70 th International Symposium on Molecular Spectroscopy / Champaign-Urbana, Illinois, USA, June 22–26, 2015 LOW-TEMPERATURE COLLISIONAL BROADENING IN THE.
60th Ohio State University Symposium on Molecular Spectroscopy June 20–24, 2005 Rotational Raman Spectroscopy of Ethylene Using a Femtosecond Time-Resolved.
A. Barbe, M.-R. De Backer-Barilly, Vl.G. Tyuterev Analysis of CW-CRDS spectra of 16 O 3 : 6000 to 6200 cm -1 spectral range Groupe de Spectrométrie Moléculaire.
Molecular Spectroscopy Symposium June 2010 Can the Inversion-Vibration-Rotation Problem in the 4 and 2 2 States of NH 3 be solved to Experimental.
D. Zhao, K.D. Doney, H. Linnartz Sackler Laboratory for Astrophysics, Leiden Observatory, University of Leiden, the Netherlands T he 3 μm Infrared Spectra.
O. PIRALI, J. OOMENS, N. POLFER FOM Rijnhuizen, 3439MN Nieuwegein, The Netherlands Y. UENO, R. MABOUDIAN Department of Chemical Engineering, U.C. Berkeley,
Synchrotron Far Infrared Spectroscopy : Higher resolution and longer wavelengths at the Canadian Light Source A.R.W. McKellar National Research Council.
THE ANALYSIS OF 2ν3 BAND OF HTO
International Symposium on Molecular Spectroscopy
Gas phase rovibrational spectroscopy of DMSO, Part I: « When a synchrotron source reveals an unusual rotational behaviour » Arnaud Cuisset, Dmitrii Sadovskii.
High resolution far-IR spectroscopy of HFC-134a at cold temperatures
International Symposium on Molecular Spectroscopy
The Near-IR Spectrum of CH3D
M. VERVLOET, M. A. MARTIN-DRUMEL., D. W. TOKARYK, O. PIRALI
Advertisement.
A. Barbe, M. R. De Backer-Barilly, Vl. G. Tyuterev, D. Romanini1, S
High-Resolution Spectroscopy and Analysis of the n3/2n4 Dyad of CF4
NH3 measurements in the far-IR
Single Vibronic Level (SVL) emission spectroscopy of CHBr: Vibrational structure of the X1A and a3A  states.
Lowest vibrational states of acrylonitrile
Analysis of torsional splitting in the ν8 band of propane near 870
d'Opale, F Dunkerque, France,
The torsional spectrum of doubly deuterated methanol CHD2OH
Computation of Harmonic and Anharmonic Vibrational Spectra
F H F O Semiexperimental structure of the non rigid BF2OH molecule (difluoroboric acid) by combining high resolution infrared spectroscopy and ab initio.
The Rotational Spectrum and Conformational Structures of Methyl Valerate LAM NGUYEN Laboratoire Interuniversitaire des Systèmes Atmosphériques (LISA)
Presentation transcript:

HIGH RESOLUTION SPECTROSCOPY OF THE CARBON CAGE ADAMANTANE C10H16 Vincent BOUDON Laboratoire Interdisciplinaire Carnot de Bourgogne – UMR 5209 CNRS-Université de Bourgogne, 9 Av. A. Savary, BP 47870, F-21078 DIJON, France Olivier PIRALI*, Didier BALCON, Michel VERVLOET Ligne AILES – Synchrotron SOLEIL, L’Orme des Merisiers, F-91192, GIF-SUR-YVETTE, France * and ISMO, CNRS, Bat 210 Université Paris Sud, Orsay, France Jos OOMENS Inst. Plasma Phys. Rijnhuizen, FOM, NL-3439 MN Nieuwegein, Netherlands

Contents The adamantane molecule The spectra Analysis of line positions Conclusion

I. The adamantane molecule

Why adamantane ? The simplest diamondoid molecule, composed of a single tetrahedral carbon cage. Diamond-like molecules have unique structures and properties (stability, hadrness, rigidity, optical transparency, …). Presence of diamond-like materials (which are more stable than graphite) is suspected in different astrophysical objects. Intense emission features around 3.43 and 3.53 μm in the circumstellar shell of some Herbig objects to CH stretching modes of diamond-like molecules. Such an identification remains hypothetical, however. Detailed spectroscopic studies of such molecules should be performed.

A tetrahedral cage Calculated structure of C10H16 using the B3LYP DFT with the 6-31G(d,p) basis set. There are 72 vibrational modes, including 11 F2 IR active modes. The ground state rotational constant is estimated to: B0 ≈ 1.6747 GHz ≈ 0.0558 cm-1

II. The spectra

AILES beamline at SOLEIL High Resolution Absorption Spectroscopy in the Far-IR Interferometer Synchrotron beam entrance Multipass cell : Max = 200m Bolometer detectors Maximum spectral resolution = 0.001 cm-1 Spectral range= 7-1000 cm-1

Overview of the vibrational spectrum

The high-resolution spectra Different pressures have been used, because of band intensities ranging from a few tens to several hundreds of km.mol-1. Spectral range / cm-1 Gaz pressure / mb Spectral resolution / cm-1 Continuum source Scan time / h 600 – 4500 0.02 0.001 Globar 40 33 – 600 0.07 Synchrotron 31 1000 – 2000 0.006 30 Optical path (White cell) : 151.75 m

III. Analysis of line positions

Effective tensorial Hamiltonian Polyad structure P0 P1 P2 Systematic tensorial development Coupled rovibrational basis Effective Hamiltonian and vibrational extrapolation

Overview of the n30 band

Detail in the n30 band

Detail in the n28 band

Detail in the n27 band

Detail in the n26 band

Rovibrational levles of the n26 band

Effective Hamiltonian parameters At present, all the analyzed bands were considered as isolated. Assignments could be realized up to high J values. Many effective Hamiltonian parameters could be determined.

IV. Conclusion

A lot of work left The present analyses are still preliminary. All bands were taken as isolated, but there may be interactions to consider. A band is observed near 950 cm-1, just below ν27, which may be an interacting E level (probably ν11, observed in Raman). ν27 ν11 ? ν25 and ν24 could not yet be analyzed and may be perturbed. Other bands may be recorded.

Spherical Top Data System The STDS database Spherical Top Data System www.icb.cnrs.fr/OMR/SMA/SHTDS • Molecular parameter database • Calculation and analysis programs • XTDS : Java interface