Hydrogen Bonding in the Dimer and Monohydrate of 2-Adamantanol: A Test Case for Dispersion-Corrected Density Functional Methods

Molecules. 2022 Apr 17;27(8):2584. doi: 10.3390/molecules27082584.

Abstract

Weakly-bound intermolecular clusters constitute reductionist physical models for non-covalent interactions. Here we report the observation of the monomer, the dimer and the monohydrate of 2-adamantanol, a secondary alcohol with a bulky ten-carbon aliphatic skeleton. The molecular species were generated in a supersonic jet expansion and characterized using broadband chirped-pulse microwave spectroscopy in the 2-8 GHz frequency region. Two different gauche-gauche O-H···O hydrogen-bonded isomers were observed for the dimer of 2-adamantanol, while a single isomer was observed for the monomer and the monohydrate. The experimental rotational parameters were compared with molecular orbital calculations using density functional theory (B3LYP-D3(BJ), B2PLYP-D3(BJ), CAM-B3LYP-D3(BJ), ωB97XD), additionally providing energetic and electron density characterization. The shallow potential energy surface makes the dimer an interesting case study to benchmark dispersion-corrected computational methods and conformational search procedures.

Keywords: chiral recognition; hydrogen bonding; jet spectroscopy; non-covalent interactions; rotational spectroscopy; transient chirality.

MeSH terms

  • Adamantane* / analogs & derivatives
  • Alcohols
  • Hydrogen Bonding
  • Molecular Conformation
  • Polymers

Substances

  • Alcohols
  • Polymers
  • 2-adamantanol
  • Adamantane