Department of Chemistry, University of Pittsburgh, Pittsburgh, Pennsylvania 15260, United States.
Department of Chemistry, University of Minnesota, Minneapolis, Minnesota 55455, United States.
J Am Chem Soc. 2021 Mar 31;143(12):4801-4808. doi: 10.1021/jacs.1c01303. Epub 2021 Mar 22.
Conformationally flexible ancillary ligands have been widely used in transition metal catalysis. However, the benefits of using flexible ligands are often not well understood. We performed density functional theory (DFT) and experimental studies to elucidate the mechanisms and the roles of conformationally flexible α,α,α',α'-tetraaryldioxolane-4,5-dimethanol (TADDOL)-derived ligands on the reactivity and selectivity in the Rh-catalyzed asymmetric hydroboration (CAHB) of alkenes. DFT calculations and deuterium labeling studies both indicated that the most favorable reaction pathway involves an unusual tertiary C-B bond reductive elimination to give high levels of regio- and enantioselectivities. Here, the asymmetric construction of the fully substituted carbon center is promoted by the flexibility of the TADDOL backbone, which leads to two ligand conformations with distinct steric environments in different steps of the catalytic cycle. A pseudo-chair ligand conformation is preferred in the rate-determining tertiary benzylic C-B reductive elimination. The less hindered steric environment with this conformation allows the benzylic group to bind to the Rh center in an η fashion, which stabilizes the C-B reductive elimination transition state. On the other hand, a pseudo-boat ligand conformation is involved in the selectivity-determining alkene migratory insertion step, where the more anisotropic steric environment leads to greater ligand-substrate steric interactions to control the π-facial selectivity. Thus, using a conformationally flexible ligand is beneficial for enhancing both reactivity and enantioselectivity by controlling ligand-substrate interactions in two different elementary steps.
构象灵活的辅助配体在过渡金属催化中得到了广泛的应用。然而,使用灵活配体的好处往往不被很好地理解。我们进行了密度泛函理论(DFT)和实验研究,以阐明构象灵活的α,α,α',α'-四芳基-1,3-二氧戊环-4,5-二甲醇(TADDOL)衍生配体在铑催化的烯烃不对称硼氢化(CAHB)反应中的反应性和选择性中的作用和机制。DFT 计算和氘标记研究都表明,最有利的反应途径涉及不寻常的叔 C-B 键还原消除,从而给出高区域和对映选择性。在这里,TADDOL 骨架的灵活性促进了完全取代的碳中心的不对称构建,导致在催化循环的不同步骤中具有不同的空间环境的两种配体构象。在速率决定的叔苄基 C-B 还原消除中,优先采用拟椅式配体构象。这种构象的较小位阻环境允许苄基以 η 方式与 Rh 中心结合,从而稳定 C-B 还原消除过渡态。另一方面,拟船式配体构象参与了选择性决定的烯烃迁移插入步骤,其中更各向异性的空间环境导致更大的配体-底物空间相互作用,以控制π-面选择性。因此,通过控制两个不同基本步骤中的配体-底物相互作用,使用构象灵活的配体有利于提高反应性和对映选择性。