High-resolution IR absorption spectroscopy of polycyclic aromatic hydrocarbons: the realm of anharmonicity
arXiv:1510.04948 · doi:10.1088/0004-637X/814/1/23
Abstract
We report on an experimental and theoretical investigation of the importance of anharmonicity in the 3 micron CH stretching region of Polycyclic Aromatic Hydrocarbon (PAH) molecules. We present mass-resolved, high-resolution spectra of the gas-phase cold (~4K) linear PAH molecules naphthalene, anthracene, and tetracene. The measured IR spectra show a surprisingly high number of strong vibrational bands. For naphthalene, the observed bands are well separated and limited by the rotational contour, revealing the band symmetries. Comparisons are made to the harmonic and anharmonic approaches of the widely used Gaussian software. We also present calculated spectra of these acenes using the computational program SPECTRO, providing anharmonic predictions enhanced with a Fermi-resonance treatment that utilises intensity redistribution. We demonstrate that the anharmonicity of the investigated acenes is strong, dominated by Fermi resonances between the fundamental and double combination modes, with triple combination bands as possible candidates to resolve remaining discrepancies. The anharmonic spectra as calculated with SPECTRO lead to predictions of the main modes that fall within 0.5% of the experimental frequencies. The implications for the Aromatic Infrared Bands, specifically the 3 micron band are discussed.
v.2 (02/11/15) Updated: references, figures and affiliation
References in corpus (3)
Cited by in corpus (24)
- PDRs4All IV. An embarrassment of riches: Aromatic infrared bands in the Orion Bar
- Probing the size and charge of Polycyclic Aromatic Hydrocarbons
- PDRs4All III: JWST's NIR spectroscopic view of the Orion Bar
- PDRs4All: A JWST Early Release Science Program on radiative feedback from massive stars
- Fully anharmonic infrared cascade spectra of polycyclic aromatic hydrocarbons
- High-resolution IR absorption spectroscopy of polycyclic aromatic hydrocarbons in the 3 micron region: role of hydrogenation and alkylation
- JWST: Deuterated PAHs, PAH-nitriles, and PAH Overtone and Combination Bands I: Program Description and First Look
- Machine-learning prediction of infrared spectra of interstellar polycyclic aromatic hydrocarbons
- Anharmonic vibrational spectroscopy of Polycyclic Aromatic Hydrocarbons (PAHs)
- Laboratory gas-phase infrared spectra of two astronomically relevant PAH cations: diindenoperylene, CH and dicoronylene, CH
- PAH Spectroscopy from 1-5 m
- Anharmonicity in the mid-infrared spectra of polycyclic aromatic hydrocarbons: Molecular beam spectroscopy and calculations
- Anharmonicity and the infrared emission spectrum of highly excited PAHs
- Anharmonic Infrared Spectra of Thermally Excited Pyrene(CH): the combined view of DFT-based GVPT2 with AnharmonicCaOs and approximate DFT molecular dynamics with DemonNano
- Search for Hydrogenated C (fulleranes) in Circumstellar Envelopes
- A search for hydrogenated fullerenes in fullerene-containing planetary nebulae
- The Infrared Absorption Spectrum of Phenylacetylene and its Deuterated Isotopologue in the Mid- to Far-IR
- The High-Resolution Far- to Near-Infrared Anharmonic Absorption Spectra of Cyano-Substituted Polycyclic Aromatic Hydrocarbons from 300-6200 cm
- Gas-phase spectroscopy of photostable PAH ions from the mid- to far-infrared
- Infrared action spectroscopy of doubly charged PAHs and their contribution to the aromatic infrared bands
- The infrared bands of polycyclic aromatic hydrocarbons in the 1.6-1.7 μm wavelength region
- The Fundamental Vibrational Frequencies and Spectroscopic Constants of the Dicyanoamine Anion, NCNCN (CN): Quantum Chemical Analysis for Astrophysical and Planetary Environments
- Aromatic Species in the Molecular Universe
- Anharmonic infrared spectra of cationic pyrene and superhydrogenated derivatives