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人工手性三核锌催化剂:酮类不对称硼氢化反应中的设计、自组装及前所未有的效率

Artificial Chiral Trinuclear Zn Catalysts: Design, Self-Assembly and Unprecedented Efficiency in Asymmetric Hydroboration of Ketones.

作者信息

He Jingxi, Jiang Shuxin, Qiu Yu, Liu Yingchao, Ding Kuiling, Wang Xiaoming

机构信息

State Key Laboratory of Organometallic Chemistry and Shanghai Hongkong Joint Laboratory in Chemical Synthesis, Shanghai Institute of Organic Chemistry, University of Chinese Academy of Sciences, Chinese Academy of Sciences, 345 Lingling Road, Shanghai 200032, China.

Frontier Science Center for Transformative Molecules, School of Chemistry and Chemical Engineering, Shanghai Jiao Tong University, 800 Dongchuan Road, Shanghai 200240, China.

出版信息

ACS Cent Sci. 2025 Aug 12;11(9):1773-1783. doi: 10.1021/acscentsci.5c01067. eCollection 2025 Sep 24.

Abstract

The development of artificial catalysts with efficiency that can rival those of Nature's enzymes represents one of the foremost yet challenging goals in homogeneous metal catalysis. Inspired by the exceptional performance of metalloenzymes, the design and development of highly efficient bi/multinuclear catalysts via judicious ligand design, by taking advantage of the cooperative action of the proximal catalytic sites, has attracted great attention. Herein, we report the self-assembly of a chiral hexadentate BINOL-dipyox ligand with zinc acetate into a well-defined trinuclear zinc complex, which demonstrated ultrahigh catalytic productivity in the enantioselective hydroboration of ketones with an unprecedented turnover number (TON) of 19,400 at an extremely low catalyst loading (0.005 mol %). Mechanistic investigations reveal that a cooperative Lewis acid activation mode is operating in the catalytic process, hence, underscoring the unique advantages of the trinuclear architecture.

摘要

开发效率可与天然酶相媲美的人工催化剂是均相金属催化领域最重要但也最具挑战性的目标之一。受金属酶卓越性能的启发,通过合理的配体设计,利用近端催化位点的协同作用来设计和开发高效的双/多核催化剂,已引起了广泛关注。在此,我们报道了一种手性六齿BINOL-联二氧配体与醋酸锌自组装形成结构明确的三核锌配合物,该配合物在酮的对映选择性硼氢化反应中表现出超高的催化活性,在极低的催化剂负载量(0.005 mol%)下,周转数(TON)达到了前所未有的19,400。机理研究表明,催化过程中存在协同路易斯酸活化模式,从而突出了三核结构的独特优势。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/fefa/12464761/dba87392401a/oc5c01067_0001.jpg

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