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手性磷酸催化的 α-萘酚的氨基去芳构化/Michael 加成反应。

Chiral phosphoric acid catalyzed aminative dearomatization of α-naphthols/Michael addition sequence.

机构信息

State Key Laboratory of Organometallic Chemistry, Center for Excellence in Molecular Synthesis, Shanghai Institute of Organic Chemistry, University of Chinese Academy of Sciences, Chinese Academy of Sciences, 345 Lingling Lu, 200032, Shanghai, China.

Collaborative Innovation Center of Chemical Science and Engineering, 300072, Tianjin, China.

出版信息

Nat Commun. 2019 Jul 17;10(1):3150. doi: 10.1038/s41467-019-11109-9.

Abstract

Asymmetric dearomatization reactions have recently emerged as a powerful tool for the rapid build-up of the molecular complexity. Chiral three-dimensional polycyclic molecules bearing contiguous stereogenic centers can be synthesized from readily available planar aromatic feedstocks. Here we report that an intermolecular asymmetric dearomatization reaction of α-naphthols bearing a tethered nucleophile at the C4 position of the naphthol ring is achieved by a chiral phosphoric acid. The reaction proceeds via a highly chemo- and regioselective aminative dearomatization/Michael addition sequence, affording a wide array of functionalized cyclic ketones in good yields (up to 93%) with excellent enantioselectivity (up to >99% ee). The catalyst loading can be reduced to 0.1 mol%. Preliminary mechanistic investigations identify that the enantioselectivity is established in the dearomatization step, while the Michael addition is the rate-limiting step. A working model accounting for the origin of the stereochemistry is proposed based on DFT calculations.

摘要

不对称去芳构化反应最近已成为快速构建分子复杂性的有力工具。具有连续立体中心的手性三维多环分子可以从易得的平面芳香原料合成。在这里,我们报告了一种通过手性磷酸实现的带有连接亲核试剂的α-萘酚的分子间不对称去芳构化反应。该反应通过高度化学和区域选择性的胺化去芳构化/Michael 加成序列进行,以良好的收率(高达 93%)和优异的对映选择性(高达>99%ee)提供了广泛的官能化环状酮。催化剂负载量可以降低至 0.1 mol%。初步的机理研究表明,对映选择性在去芳构化步骤中建立,而 Michael 加成是限速步骤。基于 DFT 计算提出了一个可以解释立体化学起源的工作模型。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2cac/6637135/57754ca15959/41467_2019_11109_Fig1_HTML.jpg

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