Ali Md Ashif, Laxman Kandala, Ravikanth Mangalampalli
Indian Institute of Technology Bombay, Powai, Mumbai 400076, India.
Department of Chemistry, GIS, GITAM Deemed to Be University, Rushikonda, Visakhapatnam 530045, AP, India.
J Org Chem. 2022 Mar 4;87(5):3202-3211. doi: 10.1021/acs.joc.1c02925. Epub 2022 Feb 11.
Four different aromatic -substituted tellurophene-containing dithiasapphyrins were synthesized by acid-catalyzed [3+2] condensation of 16-telluratripyrrane with bithiophene diol in 22-23% yields. The structural, spectral, and electrochemical properties of tellura dithiasapphyrins were studied and compared with those of previously reported aza (pyrrole)- and other heterocycle (furan, thiophene, and selenophene)-containing dithiasapphyrins. Nuclear magnetic resonance studies indicated that the tellurophene ring in tellura dithiasapphyrins is in the normal conformation, facing toward the inner core, but flips in diprotonated derivatives to an inverted conformation, facing away from the macrocyclic core, unlike aza- and other heterocycle-containing dithiasapphyrins in which pyrrole and the corresponding heterocycle ring always prefer to be in inverted conformation in their neutral and protonated forms. The crystal structure obtained for one of the tellura dithiasapphyrins showed that the macrocycle is highly planar and the tellurophene ring is in the normal conformation. The absorption spectra of tellura dithiasapphyrins exhibited slight hypsochromic shifts compared to those of pyrrole- and other heterocycle-containing dithiasapphyrins. The redox studies indicated that the tellura dithiasapphyrins are electron deficient and readily undergoes reductions. Density functional theory and nuclear independent chemical shift studies indicated that the macrocycles are aromatic, and the computational results closely matched the experimental observations.
通过16-碲代三吡咯与联噻吩二醇的酸催化[3+2]缩合反应,以22-23%的产率合成了四种不同的芳基取代的含碲吩二噻萨菲啉。研究了碲二噻萨菲啉的结构、光谱和电化学性质,并与先前报道的含氮杂环(吡咯)和其他杂环(呋喃、噻吩和硒吩)的二噻萨菲啉进行了比较。核磁共振研究表明,碲二噻萨菲啉中的碲吩环处于正常构象,朝向内环,但在双质子化衍生物中会翻转成反向构象,背离大环核心,这与含氮杂环和其他含杂环的二噻萨菲啉不同,在后者中吡咯和相应的杂环在中性和质子化形式下总是倾向于处于反向构象。其中一种碲二噻萨菲啉的晶体结构表明,大环高度平面化,碲吩环处于正常构象。与含吡咯和其他含杂环的二噻萨菲啉相比,碲二噻萨菲啉的吸收光谱表现出轻微的紫移。氧化还原研究表明,碲二噻萨菲啉缺电子,容易发生还原反应。密度泛函理论和核独立化学位移研究表明,大环是芳香性的,计算结果与实验观察结果密切匹配。