| Literature DB >> 27722486 |
Chris Medcraft1, Sabrina Zinn1, Melanie Schnell1, Anja Poblotzki2, Jonas Altnöder2, Matthias Heger2, Martin A Suhm2, Dominic Bernhard3, Anke Stamm3, Fabian Dietrich3, Markus Gerhards3.
Abstract
Dispersion interactions are omnipresent in intermolecular interactions, but their respective contributions are difficult to predict. Aromatic ethers offer competing docking sites for alcohols: the ether oxygen as a well known hydrogen bond acceptor, but also the aromatic π system. The interaction with two aromatic moieties in diphenyl ether can tip the balance towards π binding. We use a multi-spectroscopic approach to study the molecular recognition, the structure and internal dynamics of the diphenyl ether-methanol complex, employing infrared, infrared-ultraviolet and microwave spectroscopy. We find that the conformer with the hydroxy group of the alcohol binding to one aromatic π cloud and being coordinated by an aromatic C-H bond of the other phenyl group is preferred. Depending on the expansion conditions in the supersonic jet, we observe a second conformer, which exhibits a hydrogen bond to the ether oxygen and is higher in energy.Entities:
Year: 2016 PMID: 27722486 DOI: 10.1039/c6cp03557d
Source DB: PubMed Journal: Phys Chem Chem Phys ISSN: 1463-9076 Impact factor: 3.676