Department of Chemistry, Indian Institute of Technology, Kharagpur721302, India.
Department of Chemistry, Mrinalini Datta Mahavidyapith, Kolkata 700 051, India.
Org Biomol Chem. 2021 Jun 16;19(23):5148-5154. doi: 10.1039/d1ob00521a.
Nucleophilic addition to p-benzynes derived via Bergman cyclization has become a topic of keen interest. Studying the regioselectivity in such addition can reveal important information regarding the parameters controlling such addition. Recently, high regioselectivity has been achieved in nucleophilic addition to a p-benzyne derived from an ortho substituted benzo fused cyclic azaenediyne. Rather than having a freely rotating substitution, a rigid hydrogen atom coming from a suitable naptho fused enediyne and residing in the plane of the p-benzyne ring can offer hindrance to the trajectory of the nucleophile. This can lead to regioselectivity provided the other side remains relatively free of such hindrance. Based on that approach, halide addition to p-benzynes derived from naphtho fused cyclic azaenediynes was studied and a high level of regioselectivity was observed. Steric hindrance to the trajectory of nucleophile by the bay hydrogen was found to be the main cause of such regioselectivity; however, differential electrostatic potential as well as distortions at reactive centres have a minor role in controlling the regioselectivity. The products of such high yielding addition are the halo naphtho tetrahydroisoquinolines.
通过 Bergman 环化得到的亲核试剂对 p-苯炔的加成已成为研究热点。研究此类加成的区域选择性可以揭示控制此类加成的参数的重要信息。最近,在通过邻位取代的苯并稠合环状氮杂二炔衍生的 p-苯炔的亲核加成中实现了高区域选择性。与具有自由旋转取代基的情况不同,来自合适的萘并稠合烯二炔的刚性氢原子位于 p-苯炔环的平面内,可以对亲核试剂的轨迹造成阻碍。如果另一侧相对没有这种阻碍,则可以实现区域选择性。基于这种方法,研究了萘并稠合环状氮杂二炔衍生的 p-苯炔的卤化物加成,观察到高区域选择性。Bay 氢对亲核试剂轨迹的空间位阻被发现是这种区域选择性的主要原因;然而,静电势能差以及反应中心的变形在控制区域选择性方面的作用较小。这种高产率加成的产物是卤代萘四氢异喹啉。