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一种用于控制对称/不对称氧化偶氮芳烃中产物选择性和区域选择性的双CQD催化与氢键受体

A Dual CQD-Catalysis and H-Bond Acceptor for Controlling Product Selectivity and Regioselectivity in Symmetric/Unsymmetric Azoxy Arenes.

作者信息

Hasani Morteza, Kalhor Hamid R

机构信息

Biochemistry and Chemical Biology Research Laboratory, Chemistry Department, Sharif University of Technology, Tehran 11365-11155, Iran.

出版信息

J Org Chem. 2024 Oct 4;89(19):13836-13846. doi: 10.1021/acs.joc.4c00373. Epub 2024 Sep 25.

DOI:10.1021/acs.joc.4c00373
PMID:39319746
Abstract

Azoxy arenes are valuable compounds in different areas of chemistry, such as organic chemistry, medicinal chemistry, and natural product chemistry. Despite their value, the regioselective synthesis of unsymmetric azoxybenzenes has remained a real challenge in the field. Herein, the product selectivity in oxidative homocoupling of anilines into symmetric azoxybenzenes was first achieved by an asparagine-functionalized CQD catalyst. Subsequently, in the cross-coupling of anilines into the unsymmetric azoxybenzenes via an ortho H-bond acceptor (HBA) on one of the coupling anilines, the regioselectivity was effectively controlled. It was demonstrated that ortho-HBA could mechanistically establish a six-membered intramolecular hydrogen-bonded ring on an ,'-dihydroxy intermediate. The formed hydrogen bond makes the nearby nitrogen eminently suitable for the slow dehydration step. As a result, the functional oxygen of the azoxy compound is placed far from the HBA. The o-HBA mechanism also controls the regioselectivity ratio in which 1:0 (with an intramolecular H-bonded hexagonal ring), 2:1 (with an intramolecular H-bonded pentagonal ring), and 1:1 (without an ortho-HBA) isomeric mixtures could be achieved. The HBA mechanism was exploited by different substituted anilines, and various unsymmetric azoxybenzenes were synthesized. Finally, with the aid of mechanistic studies, a plausible mechanism for the reaction was proposed.

摘要

氧化偶氮芳烃是化学不同领域中的重要化合物,如有机化学、药物化学和天然产物化学。尽管它们具有重要价值,但不对称氧化偶氮苯的区域选择性合成在该领域仍然是一个真正的挑战。在此,通过天冬酰胺功能化的碳量子点催化剂首次实现了苯胺氧化均偶联生成对称氧化偶氮苯的产物选择性。随后,在通过其中一个偶联苯胺上的邻位氢键受体(HBA)将苯胺交叉偶联生成不对称氧化偶氮苯的过程中,有效地控制了区域选择性。结果表明,邻位HBA可以通过机理在一个α,β-二羟基中间体上建立一个六元分子内氢键环。形成的氢键使附近的氮非常适合缓慢的脱水步骤。因此,氧化偶氮化合物的官能氧远离HBA。邻位HBA机理还控制了区域选择性比例,在该比例下可以实现1:0(具有分子内氢键六元环)、2:1(具有分子内氢键五元环)和1:1(没有邻位HBA)的异构体混合物。不同取代的苯胺利用了HBA机理,并合成了各种不对称氧化偶氮苯。最后,借助机理研究,提出了该反应的合理机理。

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