College of Science, Chemistry Department, Riyadh, Princess Nourah bint Abdulrahman University, Riyadh 11671, Saudi Arabia.
Faculty of Science, Department of Chemistry, Cairo University, Cairo 12613, Egypt.
Molecules. 2020 Mar 20;25(6):1420. doi: 10.3390/molecules25061420.
New mesomorphic symmetrical 2:1 supramolecular H-bonded complexes of seven phenyl rings were prepared between 4-n-alkoxyphenylazobenzoic acids and 4-(2-(pyridin-3-yl)diazenyl)phenyl nicotinate. Mesomorphic studies of the prepared complexes were investigated using differential scanning calorimetry (DSC) and polarizing optical microscopy (POM). Fermi bands of the formed H-bonded interactions were confirmed by FT-IR spectroscopy. Geometrical parameters for all complexes were performed using the density functional theory (DFT) calculations method. Theoretical results revealed that the prepared H-bonded complexes are in non-linear geometry with U-shaped and wavy-shaped geometrical structures; however, the greater linearity of the wavy-shaped compounds could be the reason for their stability with respect to the U-shaped conformer. Moreover, the stable, wavy shape of supramolecular H-bonded complexes (SMHBCs) has been used to illustrate mesomeric behavior in terms of the molecular interaction. The experimental mesomorphic investigations revealed that all complexes possess enantiotropic smectic C phase. Phases were confirmed by miscibility with a standard smectic C (SmC) compound. A comparison was constructed to investigate the effect of incorporating azophenyl moiety into the mesomeric behavior of the corresponding five-membered complexes. It was found that the addition of the extra phenylazo group to the acid moiety has a great increment of the mesophase stability () values with respect to the monotropic SmC phase of the five aromatic systems to the high stable enantiotropic SmC mesophase.
新的介晶对称 2:1 超分子氢键复合物由 4-正烷氧基苯基偶氮苯甲酸和 4-(2-(吡啶-3-基)偶氮基)苯基烟酸酯之间制备。使用差示扫描量热法(DSC)和偏光显微镜(POM)研究了所制备的配合物的介晶性质。通过傅里叶变换红外光谱(FT-IR)光谱证实了形成的氢键相互作用的费米带。使用密度泛函理论(DFT)计算方法对所有配合物的几何参数进行了计算。理论结果表明,所制备的氢键复合物具有非线性几何形状,具有 U 形和波浪形几何结构;然而,波浪形化合物的较大线性度可能是其相对于 U 形构象稳定的原因。此外,超分子氢键复合物(SMHBC)的稳定波浪形已被用于根据分子相互作用说明介晶行为。实验介晶研究表明,所有配合物都具有各向同性向列 C 相。通过与标准向列 C(SmC)化合物的混溶性确认了相。构建了一个比较来研究将偶氮苯基部分引入相应的五重配合物的介晶行为的影响。结果发现,与五芳基体系的单各向性 SmC 相比,在酸部分中添加额外的苯偶氮基团对于介晶相稳定性()值具有很大的增量-向高稳定各向异性 SmC 介晶相。