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催化不对称脱氢硅氢/氢卤偶联反应合成硅手性硅烷

Catalytic Asymmetric Dehydrogenative Si-H/X-H Coupling toward Si-Stereogenic Silanes.

作者信息

Ge Yicong, Ke Jie, He Chuan

机构信息

Shenzhen Grubbs Institute and Department of Chemistry, Shenzhen Key Laboratory of Small Molecule Drug Discovery and Synthesis, Guangdong Provincial Key Laboratory of Catalysis, Southern University of Science and Technology, Shenzhen, Guangdong 518055, China.

Key Laboratory of Synthetic and Natural Functional Molecule of the Ministry of Education, College of Chemistry & Materials Science, Northwest University, Xi'an 710127, China.

出版信息

Acc Chem Res. 2025 Feb 4;58(3):375-398. doi: 10.1021/acs.accounts.4c00667. Epub 2025 Jan 22.

DOI:10.1021/acs.accounts.4c00667
PMID:39841996
Abstract

ConspectusChiral organosilicon compounds bearing a Si-stereogenic center have attracted increasing attention in various scientific communities and appear to be a topic of high current relevance in modern organic chemistry, given their versatile utility as chiral building blocks, chiral reagents, chiral auxiliaries, and chiral catalysts. Historically, access to these non-natural Si-stereogenic silanes mainly relies on resolution, whereas their asymmetric synthetic methods dramatically lagged compared to their carbon counterparts. Over the past two decades, transition-metal-catalyzed desymmetrization of prochiral organosilanes has emerged as an effective tool for the synthesis of enantioenriched Si-stereogenic silanes. Despite the progress, these catalytic reactions usually suffer from limited substrate scope, poor functional-group tolerance, and low enantioselectivity. The growing demand for Si-stereogenic silanes with structural diversity has continued to drive the development of new practical methods for the assembly of these chiral molecules.Five years ago, our research group embarked on a project aimed at developing a general catalytic approach that can unlock access to various functionalized Si-stereogenic organosilanes with high efficiency. This Account describes our laboratory's endeavor in the exploration and development of catalytic asymmetric dehydrogenative Si-H/X-H coupling toward Si-stereogenic silanes. This approach features (1) readily accessible dihydrosilane starting materials; (2) diverse X-H (X═C, N, O, etc.) coupling partners; (3) platform transformable Si-stereogenic monohydrosilane products; and (4) high efficiency and atomic economy.At the initial stage of the research, a biaryl dihydrosilane was selected as the model substrate to conduct an enantioselective intramolecular C-H/Si-H dehydrogenative coupling reaction. Rh/Josiphos catalytic system was found to be effective at the early stage of this process, while the final enantiocontrol was elusive. Mechanistic studies indicated that a rhodium silyl dihydride complex is the resting state in the catalytic cycle, which may undergo racemization of the Si-stereogenic center. Enlightened by the mechanistic investigations, two strategies, the tandem alkene hydrosilylation strategy and bulky alkene-assisted dehydrogenative strategy, were adopted to avoid racemization, delivering the corresponding Si-stereogenic 9-silafluorenes with excellent yields and enantioselectivities. Further enantioselective intramolecular C(sp)-H or C(sp)-H silylation gave access to a series of five-, six- and seven-membered Si-stereogenic heterocycles with high efficiency. Next, we extended the reaction to an intermolecular version, realizing asymmetric Si-H/C-H, Si-H/O-H, and Si-H/N-H dehydrogenative coupling reactions toward a variety of acyclic Si-stereogenic monohydrosilanes, silyl ethers, siloxanes, silanols, and silazanes. We also presented our endeavors to apply the resulting Si-stereogenic compounds, including further derivatization, polymerization, and chiroptical property investigations, which successfully introduced Si-stereocenters into bioactive molecules, polymers, and chiroptical materials. Lastly, based on the understanding of silyl metal species, we developed a new type of chiral silyl ligand that can be applied to enable an atroposelective intermolecular C-H/Si-H dehydrogenative coupling reaction. We anticipate that our research, including synthetic methodology, mechanistic insights, and property studies, will not only inspire the further development of chiral organosilicon chemistry but also contribute to the creation of novel chiral molecules to be applied in synthetic chemistry, medicinal chemistry, and materials science.

摘要

综述

带有硅手性中心的手性有机硅化合物在各个科学领域都引起了越来越多的关注,鉴于它们作为手性砌块、手性试剂、手性助剂和手性催化剂的广泛用途,似乎是现代有机化学中当前高度相关的一个话题。从历史上看,获得这些非天然的硅手性硅烷主要依赖于拆分,而它们的不对称合成方法与碳类似物相比则显著滞后。在过去的二十年中,前手性有机硅烷的过渡金属催化去对称化已成为合成对映体富集的硅手性硅烷的有效工具。尽管取得了进展,但这些催化反应通常存在底物范围有限、官能团耐受性差和对映选择性低的问题。对具有结构多样性的硅手性硅烷的需求不断增长,继续推动着这些手性分子组装新实用方法的发展。

五年前,我们的研究小组启动了一个项目,旨在开发一种通用的催化方法,能够高效地获得各种功能化的硅手性有机硅烷。本综述描述了我们实验室在探索和开发用于硅手性硅烷的催化不对称脱氢硅 - 氢/ X - 氢偶联方面的努力。这种方法具有以下特点:(1)易于获得的二氢硅烷起始原料;(2)多样的X - 氢(X = C、N、O等)偶联伙伴;(3)可平台转化的硅手性单氢硅烷产物;(4)高效率和原子经济性。

在研究的初始阶段,选择了一种联芳基二氢硅烷作为模型底物进行对映选择性分子内碳 - 氢/硅 - 氢脱氢偶联反应。发现铑/ Josiphos催化体系在该过程的早期是有效的,但最终的对映体控制难以实现。机理研究表明,铑硅基二氢配合物是催化循环中的静止状态,这可能导致硅手性中心的外消旋化。受机理研究的启发,采用了两种策略,即串联烯烃硅氢化策略和大位阻烯烃辅助脱氢策略来避免外消旋化,以优异的产率和对映选择性得到了相应的硅手性9 - 硅芴。进一步的对映选择性分子内碳(sp) - 氢或碳(sp) - 氢硅化反应高效地得到了一系列五元、六元和七元硅手性杂环。接下来,我们将反应扩展到分子间版本,实现针对各种无环硅手性单氢硅烷、硅醚、硅氧烷、硅醇和硅氮烷的不对称硅 - 氢/碳 - 氢、硅 - 氢/氧 - 氢和硅 - 氢/氮 - 氢脱氢偶联反应。我们还介绍了我们在应用所得硅手性化合物方面的努力,包括进一步的衍生化、聚合和手性光学性质研究,这些成功地将硅手性中心引入到生物活性分子、聚合物和手性光学材料中。最后,基于对硅基金属物种的理解,我们开发了一种新型的手性硅基配体,可用于实现分子间对映选择性碳 - 氢/硅 - 氢脱氢偶联反应。我们预计,我们的研究,包括合成方法、机理见解和性质研究,不仅将激发手性有机硅化学的进一步发展,而且将有助于创造新型手性分子,应用于合成化学、药物化学和材料科学。

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