Department of Chemistry, College of Science, Engineering and Technology, University of South Africa, Private Bag X06, Florida 1710, South Africa.
Department of Chemistry, University of Limpopo, Private Bag X1106, Sovenga 0727, South Africa.
Molecules. 2021 Feb 10;26(4):926. doi: 10.3390/molecules26040926.
The conformations of the title compounds were determined in solution (NMR and UV-Vis spectroscopy) and in the solid state (FT-IR and XRD), complemented with density functional theory (DFT) in the gas phase. The nonequivalence of the amide protons of these compounds due to the hindered rotation of the C(O)-NH single bond resulted in two distinct resonances of different chemical shift values in the aromatic region of their H-NMR spectra. Intramolecular hydrogen bonding interactions between the carbonyl oxygen and the sulfonamide hydrogen atom were observed in the solution phase and solid state. XRD confirmed the ability of the amide moiety of this class of compounds to function as a hydrogen bond acceptor to form a six-membered hydrogen bonded ring and a donor simultaneously to form intermolecular hydrogen bonded complexes of the type N-H···O=S. The distorted tetrahedral geometry of the sulfur atom resulted in a deviation of the sulfonamide moiety from co-planarity of the anthranilamide scaffold, and this geometry enabled oxygen atoms to form hydrogen bonds in higher dimensions.
标题化合物的构象在溶液中(NMR 和 UV-Vis 光谱)和固态(FT-IR 和 XRD)中确定,并用气相中的密度泛函理论(DFT)进行了补充。由于 C(O)-NH 单键的旋转受阻,这些化合物的酰胺质子不等价,导致其 H-NMR 光谱的芳环区域出现两个不同化学位移值的独特共振。在溶液相和固态相中观察到羰基氧和磺酰胺氢原子之间的分子内氢键相互作用。XRD 证实了这类化合物的酰胺部分能够作为氢键受体形成六元氢键环,同时作为供体形成 N-H···O=S 型的分子间氢键配合物。硫原子的扭曲四面体几何形状导致磺酰胺部分偏离邻苯二甲酰亚胺支架的共面性,这种几何形状使氧原子能够在更高维度形成氢键。