NMR Spectroscopic Characterization of Charge Assisted Strong Hydrogen Bonds in Brønsted Acid Catalysis.
Nils SorgenfreiJohnny HioeJulian GreindlKerstin RothermelFabio MoranaN LokeshRuth M GschwindPublished in: Journal of the American Chemical Society (2016)
Hydrogen bonding plays a crucial role in Brønsted acid catalysis. However, the hydrogen bond properties responsible for the activation of the substrate are still under debate. Here, we report an in depth study of the properties and geometries of the hydrogen bonds in (R)-TRIP imine complexes (TRIP: 3,3'-Bis(2,4,6-triisopropylphenyl)-1,1'-binaphthyl-2,2'-diylhydrogen phosphate). From NMR spectroscopic investigations 1H and 15N chemical shifts, a Steiner-Limbach correlation, a deuterium isotope effect as well as quantitative values of 1JNH,2hJPH and 3hJPN were used to determine atomic distances (rOH, rNH, rNO) and geometry information. Calculations at SCS-MP2/CBS//TPSS-D3/def2-SVP-level of theory provided potential surfaces, atomic distances and angles. In addition, scalar coupling constants were computed at TPSS-D3/IGLO-III. The combined experimental and theoretical data reveal mainly ion pair complexes providing strong hydrogen bonds with an asymmetric single well potential. The geometries of the hydrogen bonds are not affected by varying the steric or electronic properties of the aromatic imines. Hence, the strong hydrogen bond reduces the degree of freedom of the substrate and acts as a structural anchor in the (R)-TRIP imine complex.
Keyphrases
- visible light
- high resolution
- magnetic resonance
- molecular docking
- solid state
- genome wide
- amino acid
- molecular dynamics
- staphylococcus aureus
- molecular dynamics simulations
- mass spectrometry
- computed tomography
- ionic liquid
- human health
- climate change
- candida albicans
- pseudomonas aeruginosa
- crystal structure
- structural basis
- gas chromatography