Hefei National Research Center for Physical Sciences at the Microscale, Department of Chemistry, University of Science and Technology of China, 96 Jinzhai Road, Hefei, Anhui 230026, P. R. China.
College of Materials and Chemical Engineering, Minjiang University, Fuzhou 350108, China.
Acc Chem Res. 2022 Jun 21;55(12):1620-1633. doi: 10.1021/acs.accounts.2c00175. Epub 2022 Jun 1.
Arising from the restricted rotation of a single bond caused by steric or electronic effects, atropisomerism is one of the few fundamental categories for molecules to manifest their three-dimensional characters into which axially chiral biaryl compounds fall. Despite the widespread occurrence of axially chiral skeletons in natural products, bioactive molecules, and chiral ligands/organocatalysts, catalytic asymmetric methods for the synthesis of these structures still lag behind demand. Major challenges for the preparation of these chiral biaryls include accessing highly sterically hindered variants while controlling the stereoselectivity. A couple of useful strategies have emerged for the direct asymmetric synthesis of these molecules in the last two decades.Recently, we have engaged in catalytic asymmetric synthesis of biaryl atropisomers via transition metal catalysis, including asymmetric ring-openings of dibenzo cyclic compounds. During these studies, we serendipitously discovered that the two substituents adjacent to the axis cause these dibenzo cyclic molecules to be distorted to minimize steric repulsion. The distorted compounds display higher reactivity in the ring-opening reactions than the non-distorted molecules. In other words, . On the basis of this concept, we have successfully realized the catalytic asymmetric ring-opening reaction of cyclic diaryliodoniums, dibenzo silanes, and 9-fluoren-9-ols, which delivered several differently substituted -substituted biaryl atropisomers in high enantioselectivity. The torsional strain not only activates the substrates toward ring-opening under mild conditions but also changes the chemoselectivity of bond-breaking events. In the palladium-catalyzed carboxylation of -aryl dibenzothiophenium, the torsional strain inversed the bond selectivity from exocyclic C-S bond cleavage to the ring-opening reaction.In this Account, we summarize our studies on copper-, rhodium-, or palladium-catalyzed asymmetric ring-opening reactions of dibenzo cyclic compounds as a useful collection of methods for the straightforward preparation of -substituted biaryl atropisomers with high enantiopurity on the basis of the above-mentioned torsional strain-promoted ring-opening coupling strategy. In the last part, the torsional strain energies are also discussed with the aid of density functional theory (DFT) calculations.
由于空间或电子效应引起的单键的受限旋转,阻转异构是分子表现其三维性质的少数几个基本类别之一,轴手性联芳化合物就属于这一类。尽管轴向手性骨架在天然产物、生物活性分子和手性配体/有机催化剂中广泛存在,但这些结构的催化不对称合成方法仍远远不能满足需求。制备这些手性联芳基的主要挑战包括获得高度空间位阻的变体,同时控制立体选择性。在过去的二十年中,出现了几种用于这些分子的直接不对称合成的有用策略。最近,我们通过过渡金属催化参与了联芳基阻转异构体的催化不对称合成,包括二苯并环化合物的不对称开环。在这些研究中,我们偶然发现,与轴相邻的两个取代基会导致这些二苯并环分子扭曲,以最小化空间排斥。扭曲的化合物在开环反应中比非扭曲的分子具有更高的反应性。换句话说,。基于这一概念,我们成功地实现了环状二芳基碘鎓、二苯并硅烷和 9-芴-9-醇的催化不对称开环反应,以高对映选择性得到了几种不同取代的 -取代联芳基阻转异构体。扭转应变不仅在温和条件下使底物易于开环,而且还改变了键断裂事件的化学选择性。在钯催化的 -芳基二苯并噻吩鎓的羧化反应中,扭转应变使键选择性从外环 C-S 键断裂反转到开环反应。在本综述中,我们总结了我们在铜、铑或钯催化的二苯并环化合物的不对称开环反应研究,这是一种基于上述扭转应变促进的开环偶联策略,直接制备高对映纯度的 -取代联芳基阻转异构体的有用方法集合。在最后一部分,还借助密度泛函理论(DFT)计算讨论了扭转应变能。