Chai Zhengqi, Lv Ze-Jie, Liu Wei, Yang Jinxiao, Wei Junnian, Zhang Wen-Xiong
Beijing National Laboratory for Molecular Sciences (BNLMS), State Key Laboratory of Rare Earth Materials Chemistry and Applications & Key Laboratory of Bioorganic Chemistry and Molecular Engineering of Ministry of Education, College of Chemistry and Molecular Engineering, Peking University, Beijing, 100871, P. R. China.
Chemistry. 2024 Sep 19;30(53):e202402311. doi: 10.1002/chem.202402311. Epub 2024 Sep 6.
Azametallacyclopentadienes are an important class of metallacycles as the key intermediates in metal-promoted or catalyzed carbon-carbon coupling reaction of nitriles and alkynes. Rare-earth azametallacyclopentadienes have shown various reactivity toward nitriles, depending on the substituents of nitriles. The reaction of azalutetacyclopentadienes toward 2-methylbenzonitriles has been investigated in this work, which selectively affords the fused 7-5-6-membered azalutetacycles as products. Computational studies reveal that the reaction of azalutetacyclopentadienes toward 2-methylbenzonitriles selectively initiates with the remote activation of the benzylic C-H bond by the Lu-N bond, followed by the intramolecular nucleophilic attack from the deprotonated benzylic carbon to form a C-C bond. Subsequently, the high ring strain promoted the generation of the uncoordinated carbanion dissociated from the lutetium center, which then undergoes intramolecular nucleophilic attack toward C=N triple bond to give the final product containing fused 7-5-6-membered azalutetacycle. This work not only achieves highly selective three-step cascade reaction to form a unique class of rare-earth metallacycle, but also provides a new idea for the transformation of unsaturated substrates with C-H bonds that can be activated.
氮杂金属环戊二烯是一类重要的金属环化合物,作为腈类和炔烃的金属促进或催化碳-碳偶联反应中的关键中间体。稀土氮杂金属环戊二烯对腈类表现出各种不同的反应活性,这取决于腈类的取代基。本工作研究了氮杂镥环戊二烯与2-甲基苯腈的反应,该反应选择性地生成稠合的7-5-6元氮杂镥环作为产物。计算研究表明,氮杂镥环戊二烯与2-甲基苯腈的反应首先通过Lu-N键对苄基C-H键的远程活化选择性地引发,随后去质子化的苄基碳进行分子内亲核进攻以形成C-C键。随后,高环张力促进了从镥中心解离的未配位碳负离子的生成,然后该碳负离子对C=N三键进行分子内亲核进攻,得到含有稠合7-5-6元氮杂镥环的最终产物。这项工作不仅实现了高度选择性的三步级联反应以形成一类独特的稀土金属环化合物,而且为具有可活化C-H键的不饱和底物的转化提供了新思路。