Intermolecular bonding and vibrations of the carbazole⋅B complexes (B=H2O, D2O, NH3)
- 1 August 1986
- journal article
- research article
- Published by AIP Publishing in The Journal of Chemical Physics
- Vol. 85 (3) , 1234-1246
- https://doi.org/10.1063/1.451261
Abstract
Carbazole⋅B complexes (B=H2O, D2O, NH3) were synthesized and cooled in pulsed supersonic nozzle beams. The intermolecular hydrogen‐bond vibrations and dissociation energies were studied by several laser‐spectroscopic techniques (fluorescence excitation and emission, resonance‐two‐photonionization with mass‐specific detection). The following results were obtained for both S 0 and S 1 electronic states: (1) determination of the structural symmetry of the complexes, (2) measurement of the intermolecular stretching (νσ) and bending (νβ) frequencies, (3) determination of stretching force constants, (4) hydrogen‐bond dissociation energiesD 0 for carbazole⋅H2O/D2O, and (5) electronic spectral shifts δν̃ relative to the bare carbazole molecule. The latter are large (500–710 cm− 1) and reflect an increase of the hydrogen‐bond energy by ≈40% upon electronic excitation. Fermi resonance couplings between the intermolecular νσ and an intramolecular b 1 vibration of carbazole are observed and partially analyzed. To complement the experimental work, extensive a b i n i t i o quantum chemical calculations of the same complexes were performed at the Hartree–Fock level. The calculated complex structures are consistent with the experimental information. Intermolecular potential‐energy curves for the stretching vibrational coordinate were calculated for a number of increasingly flexible basis sets (STO‐3G, 4‐31G, 6‐31G, 4‐31G*); anharmonic vibrational frequencies were then obtained numerically. Excellent agreement with the experimental intermolecular stretching frequencies was found for all three complexes using the 4‐31G* basis set. Good agreement with experiment was also found for the calculated 4‐31G* hydrogen‐bond dissociation energy.Keywords
This publication has 55 references indexed in Scilit:
- The rotational spectrum and structure of NH3–HCNThe Journal of Chemical Physics, 1984
- Pulsed-Nozzle, Fourier-Transform Microwave Spectroscopy of Weakly Bound DimersAnnual Review of Physical Chemistry, 1983
- Spectroscopic investigations of hydrogen bonding interactions in the gas phase. Vll. The equilibrium conformation and out-of-plane bending potential energy function of the hydrogen-bonded heterodimer H 2 O • • • HF determined from its microwave rotational spectrumProceedings of the Royal Society of London. Series A. Mathematical and Physical Sciences, 1982
- Determination of properties of hydrogen-bonded dimers by rotational spectroscopy and a classfication of dimer geometriesFaraday Discussions of the Chemical Society, 1982
- Why do molecules interact? The origin of electron donor-acceptor complexes, hydrogen bonding and proton affinityAccounts of Chemical Research, 1977
- Analytical potentials from "ab initio" computations for the interaction between biomolecules. 1. Water with amino acidsJournal of the American Chemical Society, 1977
- Hydrogen bonding in the gas phase: the infrared spectra of complexes of hydrogen fluoride with hydrogen cyanide and methyl cyanideProceedings of the Royal Society of London. Series A. Mathematical and Physical Sciences, 1971
- Hydrogen bonding in the vapour phase: an unusual type of infrared bandProceedings of the Royal Society of London. Series A. Mathematical and Physical Sciences, 1970
- An infra-red spectroscopic study of the gas phase hydrogen-bonded complexes of formula (HCN)2, and NH3, HCNSpectrochimica Acta Part A: Molecular Spectroscopy, 1969
- Vibrational Assignment of Carbazole from Infrared, Raman, and Fluorescence SpectraThe Journal of Chemical Physics, 1968