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通过分子碱金属催化剂进行环氧化合物硼氢化反应制备马尔科夫尼科夫醇。

Markovnikov alcohols via epoxide hydroboration by molecular alkali metal catalysts.

作者信息

Zhang Guoqi, Zeng Haisu, Zheng Shengping, Neary Michelle C, Dub Pavel A

机构信息

Department of Sciences, John Jay College and PhD in Chemistry Program, the Graduate Center of City University of New York, New York, NY 10019, USA.

Department of Chemistry, Hunter College, City University of New York, New York, NY 10065, USA.

出版信息

iScience. 2022 Sep 12;25(10):105119. doi: 10.1016/j.isci.2022.105119. eCollection 2022 Oct 21.

Abstract

Synthesis of branched "Markovnikov" alcohols is crucial to various chemical industries. The catalytic reduction of substituted epoxides under mild conditions is a highly attractive method for preparing such alcohols. Classical methods based on heterogeneous or homogeneous transition metal-catalyzed hydrogenation, hydroboration, or hydrosilylation usually suffer from poor selectivity, reverse regioselectivity, limited functional group compatibility, high cost, and/or low availability of the catalysts. Here we report the discovery of highly regioselective hydroboration of nonsymmetrical epoxides catalyzed by ligated archetypal reductants in organic chemistry ‒ alkali metal triethylborohydrides. The chemoselectivity and turnover efficiencies of the present catalytic approach are excellent. Thus, terminal and internal epoxides with ene, yne, aryl, and halo groups were selectively and quantitatively reduced under a substrate-to-catalyst ratio (S/C) of up to 1000. Mechanistic investigations point to a mechanism reminiscent of frustrated Lewis pair action on substrates in which a nucleophile and Lewis acid act cooperatively on the substrate.

摘要

支链“马尔科夫尼科夫”醇的合成对各种化学工业至关重要。在温和条件下催化还原取代环氧化合物是制备此类醇的极具吸引力的方法。基于多相或均相过渡金属催化氢化、硼氢化或硅氢化的经典方法通常存在选择性差、区域选择性反转、官能团兼容性有限、成本高和/或催化剂可用性低等问题。在此,我们报道了在有机化学中由连接的原型还原剂——碱金属三乙基硼氢化物催化的非对称环氧化合物的高区域选择性硼氢化反应的发现。本催化方法的化学选择性和周转效率极佳。因此,带有烯基、炔基、芳基和卤基的末端和内环氧在底物与催化剂比例(S/C)高达1000的情况下被选择性地定量还原。机理研究表明其机理类似于受阻路易斯酸碱对在底物上的作用,其中亲核试剂和路易斯酸协同作用于底物。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/42e2/9515598/5a7448f93ad0/fx1.jpg

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