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Catalytic Enantioselective Methylene C(sp)-H Hydroxylation Using a Chiral Manganese Complex/Carboxylic Acid System.使用手性锰配合物/羧酸体系的催化对映选择性亚甲基C(sp)-H羟基化反应
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Chemoselective methylene oxidation in aromatic molecules.芳香族分子中的选择性亚甲基氧化。
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Oxyfunctionalization of the Remote C-H Bonds of Aliphatic Amines by Decatungstate Photocatalysis.过氧钨酸盐光催化脂肪族伯胺的远程 C-H 键氧化官能化。
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Organocatalytic, Dioxirane-Mediated C-H Hydroxylation under Mild Conditions Using Oxone.温和条件下用过氧单磺酸钾(Oxone)进行的有机催化、双氧环介导的 C-H 羟化反应。
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远程化学选择性C(sp)-H羟基化的胺有机催化

Amine Organocatalysis of Remote, Chemoselective C(sp)-H Hydroxylation.

作者信息

Hahn Philip L, Lowe Jared M, Xu Yubo, Burns Kevin L, Hilinski Michael K

机构信息

Department of Chemistry, University of Virginia, Charlottesville, Virginia 22904-4319, United States.

出版信息

ACS Catal. 2022 Apr 15;12(8):4302-4309. doi: 10.1021/acscatal.2c00392. Epub 2022 Mar 28.

DOI:10.1021/acscatal.2c00392
PMID:35529672
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC9075503/
Abstract

We introduce an organocatalytic approach for oxaziridinium-mediated C-H hydroxylation that employs secondary amines as catalysts. We also demonstrate the advantages of this operationally simple catalytic strategy for achieving high yielding and highly selective remote hydroxylation of compounds bearing oxidation-sensitive functional groups such as alcohols, ethers, carbamates, and amides. By employing hexafluoroisopropanol as the solvent in the absence of water, a proposed hydrogen bonding effect leads to, among other advantages, as high as ≥99:1 chemoselectivity for remote aliphatic hydroxylation of 2° alcohols, an otherwise unsolved synthetic challenge normally complicated by substantial amounts of alcohol oxidation. Initial studies of the reaction mechanism indicate the formation of an oxaziridinium salt as the active oxidant, and a C-H oxidation step that proceeds in a stereospecific manner via concerted insertion or hydrogen atom transfer/radical rebound. Furthermore, preliminary results indicate that site selectivity can be affected by amine catalyst structure. In the long term, we anticipate that this will enable new strategies for catalyst control of selectivity based on the abundance of catalytic scaffolds that have proliferated over the last twenty years as a result of Nobel Prize-winning discoveries.

摘要

我们介绍了一种用于恶唑啶鎓介导的C-H羟基化反应的有机催化方法,该方法使用仲胺作为催化剂。我们还展示了这种操作简单的催化策略的优势,即在实现对带有氧化敏感官能团(如醇、醚、氨基甲酸酯和酰胺)的化合物进行高产率和高选择性远程羟基化反应方面的优势。通过在无水条件下使用六氟异丙醇作为溶剂,一种推测的氢键效应带来了诸多优势,其中包括对仲醇进行远程脂肪族羟基化反应时高达≥99:1的化学选择性,这是一个原本未解决的合成挑战,通常会因大量醇氧化反应而变得复杂。对反应机理的初步研究表明,会形成恶唑啶鎓盐作为活性氧化剂,以及一个通过协同插入或氢原子转移/自由基反弹以立体特异性方式进行的C-H氧化步骤。此外,初步结果表明位点选择性可能会受到胺催化剂结构的影响。从长远来看,我们预计这将基于过去二十年来因诺贝尔奖获奖发现而大量涌现的催化支架,实现新的催化剂选择性控制策略。