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Hydrogen Bonding and Molecular Geometry in Isolated Hydrates of 2-Ethylthiazole Characterised by Microwave Spectroscopy.

Charlotte N CummingsNicholas R Walker
Published in: Chemphyschem : a European journal of chemical physics and physical chemistry (2024)
Broadband microwave spectra of the isolated 2-ethylthiazole molecule, and complexes of 2-ethylthiazole⋅⋅⋅H 2 O and 2-ethylthiazole⋅⋅⋅(H 2 O) 2 have been recorded by probing a gaseous sample containing low concentrations of 2-ethylthiazole and water within a carrier gas undergoing supersonic expansion. The identified conformer of the isolated 2-ethylthiazole molecule and the 2-ethylthiazole sub-unit within each of 2-ethylthiazole⋅⋅⋅H 2 O and 2-ethylthiazole⋅⋅⋅(H 2 O) 2 have C 1 symmetry. The angle that defines rotation of the ethyl group relative to the plane of the thiazole ring, ∠(S-C2-C6-C7), is -98.6(10)° within the isolated 2-ethylthiazole molecule. Analysis of molecular geometries and non-covalent interactions reveals each hydrate complex contains a non-linear primary, N⋅⋅⋅H b -O, hydrogen bond between an O-H of H 2 O and the nitrogen atom while the O atom of the water molecule(s) interacts weakly with the ethyl group. The ∠(H b ⋅⋅⋅N-C2) parameter, which defines the position of the H 2 O molecule relative to the thiazole ring, is found to be significantly greater for 2-ethylthiazole⋅⋅⋅H 2 O than for thiazole⋅⋅⋅H 2 O. The distance between the O atoms is determined to be 2.894(21) Å within the dihydrate complex which is shorter than observed within the isolated water dimer. The primary hydrogen bond within 2-ethylthiazole⋅⋅⋅(H 2 O) 2 is shorter and stronger than that in 2-ethylthiazole⋅⋅⋅H 2 O as a result of cooperative hydrogen bonding effects.
Keyphrases
  • single molecule
  • molecular dynamics
  • mass spectrometry
  • electron transfer
  • room temperature