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基于 C-H 活化的下碳[n]螺旋芳烃的对映选择性合成。

A C-H activation-based enantioselective synthesis of lower carbo[n]helicenes.

机构信息

Department of Chemistry, University of Basel, Basel, Switzerland.

Département Médicaments et Technologies pour la Santé (DMTS), SCBM, Université Paris-Saclay, CEA, INRAE, Gif-sur-Yvette, France.

出版信息

Nat Chem. 2023 Jun;15(6):872-880. doi: 10.1038/s41557-023-01174-5. Epub 2023 Apr 6.

Abstract

The three-dimensional structure of carbohelicenes has fascinated generations of molecular chemists and has been exploited in a wide range of applications. Their strong circularly polarized luminescence has attracted considerable attention in recent years due to promising applications in new optical materials. Although the enantioselective synthesis of fused carbo- and heterohelicenes has been achieved, a direct catalytic enantioselective method allowing the synthesis of lower, non-fused carbo[n]helicenes (n = 4-6) is still lacking. We report here that Pd-catalysed enantioselective C-H arylation in the presence of a unique bifunctional phosphine-carboxylate ligand provides a simple and general access to these lower carbo[n]helicenes. Computational mechanistic studies indicate that both the C-H activation and reductive elimination steps contribute to the overall enantioselectivity. The observed enantio-induction seems to arise from a combination of non-covalent interactions and steric repulsion between the substrate and ligand during the two key reductive elimination steps. The photophysical and chiroptical properties of the synthesized scalemic [n]helicenes have been systematically studied.

摘要

碳烯的三维结构令几代分子化学家着迷,并在广泛的应用中得到了利用。由于在新型光学材料中有应用前景,近年来,它们强烈的圆偏振发光引起了相当多的关注。尽管已实现了稠合碳杂环和杂环并环的对映选择性合成,但仍然缺乏一种直接的催化对映选择性方法,允许合成较低的、非稠合的碳[n]并环(n=4-6)。我们在这里报告,在独特的双功能膦羧酸配体存在下,Pd 催化的对映选择性 C-H 芳基化反应为这些较低的碳[n]并环提供了一种简单而通用的方法。计算机理研究表明,C-H 活化和还原消除步骤都有助于整体对映选择性。观察到的对映诱导似乎来自于底物和配体在两个关键的还原消除步骤中,通过非共价相互作用和空间排斥的组合产生的。所合成的手性[n]并环的光物理和手性光学性质已得到系统研究。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/37f8/10239729/44caf705f576/41557_2023_1174_Fig2_HTML.jpg

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