Department of Chemistry, Yale University , New Haven, Connecticut 06520-8107, United States.
J Am Chem Soc. 2017 Oct 25;139(42):15239-15244. doi: 10.1021/jacs.7b09176. Epub 2017 Oct 11.
Since the discovery of molecular chirality, nonsuperimposable mirror-image organic molecules have been found to be essential across biological and chemical processes and increasingly in materials science. Generally, carbon centers containing four different substituents are configurationally stable, unless bonds to the stereogenic carbon atom are broken and re-formed. Herein, we describe sp-stereogenic carbon-bearing molecules that dynamically isomerize, interconverting between enantiomers without cleavage of a constituent bond, nor through remote functional group migration. The stereodynamic molecules were designed to contain a pair of redox-active substituents, quinone and hydroquinone groups, which allow the enantiomerization to occur via redox-interconversion. In the presence of an enantiopure host, these molecules undergo a deracemization process that allows observation of enantiomerically enriched compounds. This work reveals a fundamentally distinct enantiomerization pathway available to chiral compounds, coupling redox-interconversion to chirality.
自从分子手性被发现以来,在生物和化学过程中,不可重叠的镜像有机分子已经被发现是必不可少的,而且在材料科学中越来越重要。一般来说,含有四个不同取代基的碳原子中心是构型稳定的,除非与手性碳原子的键被打破并重新形成。在此,我们描述了含有 sp 手性碳原子的分子,这些分子可以动态异构化,在不打断一个组成键的情况下,通过对映体之间的相互转化,也不会通过远程官能团迁移。这些立体动态分子被设计成含有一对氧化还原活性取代基,即醌和氢醌基团,这使得对映异构体的转化可以通过氧化还原转化来实现。在对映纯主体的存在下,这些分子经历了一个去消旋化过程,使得可以观察到对映体富集的化合物。这项工作揭示了手性化合物可用的一种根本不同的对映体转化途径,将氧化还原转化与手性结合起来。