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Updated: May 16, 2025

Spatial Separation of Molecular Conformers and Clusters
Published on: January 9, 2014
Hydration and Conformation of 2-Ethylfuran Explored by Microwave Spectroscopy
Charlotte N Cummings1, Nicholas R Walker1
1Chemistry- School of Natural and Environmental Sciences, Newcastle University, Bedson Building, Newcastle-upon-Tyne NE1 7RU, U.K.
Abstract:
Rotational spectra of one conformer of a 2-ethylfuran···H2O complex and two conformers of the isolated 2-ethylfuran molecule have been recorded by chirped-pulse Fourier transform microwave spectroscopy. The species were probed while entrained within a gas sample undergoing supersonic expansion. The spectra of five isotopologues of the complex have been analyzed to yield rotational (A0, B0, C0) and centrifugal distortion constants (DJ, DJK, d1) allowing structural parameters to be determined by fitting to the experimentally determined moments of inertia. Quantum chemical calculations have been performed to support the interpretation of the experimental results and gain further insights. 2-Ethylfuran is shown to adopt C1 symmetry within the observed conformer of 2-ethylfuran···H2O with the length of the hydrogen bond, r(Hb···O1), which connects H2O with 2-ethylfuran determined to be 2.0950(42) Å in the r0 geometry. The geometry of the hydrogen bonding interaction deviates from linearity such that the ∠(Ow-Hb···O1) angle (where Ow and O1 are the oxygen atoms of water and furan, respectively) is 167.69(16)° in the r0 geometry. The experimental and theoretical results thus imply the presence of a weak interaction between the oxygen of H2O and the ethyl group within the observed conformer of 2-ethylfuran···H2O. Evidence is presented to suggest that the Cs conformer of the isolated 2-ethylfuran molecule is lower in energy than the C1 conformer implying that the energy ordering of the two lowest-energy conformers of 2-ethylfuran reverses when the isolated molecule is hydrated by a single H2O molecule.
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