Department of Chemistry, University of Wisconsin , Madison, Wisconsin 53706, United States.
J Am Chem Soc. 2017 Dec 6;139(48):17376-17386. doi: 10.1021/jacs.7b07619. Epub 2017 Nov 20.
Nitrene transfer (NT) reactions represent powerful and direct methods to convert C-H bonds into amine groups that are prevalent in many commodity chemicals and pharmaceuticals. The importance of the C-N bond has stimulated the development of numerous transition-metal complexes to effect chemo-, regio-, and diastereoselective NT. An ongoing challenge is to understand how subtle interactions between catalyst and substrate influence the site-selectivity of the C-H amination event. In this work, we explore the underlying reasons why Ag(tpa)OTf (tpa = tris(pyridylmethyl)amine) prefers to activate α-conjugated C-H bonds over 3° alkyl C(sp)-H bonds and apply these insights to reaction optimization and catalyst design. Experimental results suggest possible roles of noncovalent interactions (NCIs) in directing the NT; computational studies support the involvement of π···π and Ag···π interactions between catalyst and substrate, primarily by lowering the energy of the directed transition state and reaction conformers. A simple Hess's law relationship can be employed to predict selectivities for new substrates containing competing NCIs. The insights presented herein are poised to inspire the design of other catalyst-controlled C-H functionalization reactions.
氮烯转移 (NT) 反应是将 C-H 键转化为胺基的强大而直接的方法,胺基在许多商品化学品和药物中广泛存在。C-N 键的重要性刺激了许多过渡金属配合物的发展,以实现化学选择性、区域选择性和非对映选择性的 NT。一个持续的挑战是了解催化剂和底物之间的微妙相互作用如何影响 C-H 胺化反应的位点选择性。在这项工作中,我们探讨了 Ag(tpa)OTf(tpa = 三(吡啶甲基)胺)优先激活α-共轭 C-H 键而不是 3°烷基 C(sp)-H 键的根本原因,并将这些见解应用于反应优化和催化剂设计。实验结果表明非共价相互作用 (NCIs) 在定向 NT 中可能起作用;计算研究支持催化剂和底物之间存在 π···π 和 Ag···π 相互作用,主要是通过降低导向过渡态和反应构象的能量。可以使用简单的赫斯定律关系来预测含有竞争 NCIs 的新底物的选择性。本文提出的见解有望激发其他受催化剂控制的 C-H 官能化反应的设计。