Illuminating Palladium Catalysis.

IF 16.4 1区 化学 Q1 CHEMISTRY, MULTIDISCIPLINARY
Accounts of Chemical Research Pub Date : 2025-03-18 Epub Date: 2025-02-26 DOI:10.1021/acs.accounts.4c00815
Kelvin Pak Shing Cheung, Vladimir Gevorgyan
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引用次数: 0

Abstract

ConspectusThe past decade has witnessed significant advancements of visible-light-induced photocatalysis, establishing it as a powerful and versatile tool in organic synthesis. The major focus of this field has centered on the development of methodologies that either rely solely on photocatalysts or combine photocatalysis with other catalytic methods, such as transition metal catalysis, to address a broader and more diverse array of transformations. Within this rapidly evolving area, a subfield that we refer to as transition metal photocatalysis has garnered significant attention due to its growing impact and mechanistic uniqueness. A distinguishing feature of this subfield is the dual functionality of a single transition metal complex, which not only acts as a photocatalyst to initiate photochemical processes but also functions as a traditional catalyst, facilitating key bond-breaking and bond-forming events. As such, an exogenous photocatalyst is not required in transition metal photocatalysis. However, the implications of harnessing both the excited- and ground-state reactivities of the transition metal complex can extend beyond this simplification. One of the most compelling aspects of this area is that photoexcited transition metal complexes can exhibit unique reactivities inaccessible through conventional thermal or dual photocatalytic approaches. These distinct reactivities can be leveraged to accomplish novel transformations either by engaging an entirely different substrate pool or by unlocking new reactivities of known substrates.In 2016, our group pioneered the use of phosphine-ligated palladium catalysts that can be photoexcited upon visible-light irradiation to engage diverse substrates in radical reactions. In our initial discovery, we showed that photoexcitation can redirect the well-established oxidative addition of a Pd(0) complex into aryl iodides toward an unprecedented radical process, generating hybrid aryl Pd(I) radical species. We subsequently extended this novel strategy to the formation of alkyl radicals from alkyl halides. These reactive radical intermediates have been harnessed in a wide variety of transformations, including desaturation, alkyl Heck reactions, and alkene difunctionalization cascades, among others.Seeking to further expand this new avenue, we achieved the first example of asymmetric palladium photocatalysis in the context of allylic C-H amination, where the palladium catalyst now plays triple duty by additionally controlling the stereochemical outcome of the reaction. In parallel to reaction discovery, we have also established that diazo compounds, strained molecules, and electron-deficient alkenes can serve as alkyl radical precursors beyond organic halides and redox-active esters. Notably, the engagement of electron-deficient alkenes has been made possible by the photoinduced hydricity enhancement of Pd-H species, representing a new mode of photoexcited reactivity.This Account presents our discovery and development of visible-light-induced palladium catalysis, organized by the type of transformations explored. Given the rapid progress in the field, we anticipate that this Account will provide readers with guiding principles and inspiration for designing and developing more efficient and novel transformations.

照明钯催化。
在过去的十年中,可见光诱导的光催化技术取得了重大进展,使其成为有机合成中一种强大而通用的工具。该领域的主要焦点集中在方法的发展上,这些方法要么仅仅依靠光催化剂,要么将光催化与其他催化方法(如过渡金属催化)结合起来,以解决更广泛、更多样化的转化问题。在这个快速发展的领域中,我们称之为过渡金属光催化的子领域由于其日益增长的影响和机制的独特性而引起了极大的关注。该子领域的一个显著特征是单一过渡金属配合物的双重功能,它不仅可以作为光催化剂启动光化学过程,还可以作为传统催化剂,促进关键的断键和成键事件。因此,在过渡金属光催化中不需要外源光催化剂。然而,利用过渡金属配合物的激发态和基态反应的意义可以超越这种简化。该领域最引人注目的方面之一是光激发过渡金属配合物可以表现出传统热或双光催化方法无法达到的独特反应性。这些不同的反应性可以通过加入完全不同的底物池或通过释放已知底物的新反应性来实现新的转化。2016年,我们的团队率先使用了磷化氢连接的钯催化剂,该催化剂可以在可见光照射下光激发,使不同的底物参与自由基反应。在我们最初的发现中,我们发现光激发可以将Pd(0)配合物氧化加成到芳基碘化物的过程转向一个前所未有的自由基过程,产生杂化芳基Pd(I)自由基。我们随后将这种新策略扩展到烷基卤化物形成烷基自由基。这些活性自由基中间体已被广泛应用于各种转化,包括去饱和反应、烷基Heck反应和烯烃双官能级联反应等。为了进一步扩展这一新的途径,我们在烯丙基C-H胺化的背景下实现了第一个不对称钯光催化的例子,其中钯催化剂现在通过额外控制反应的立体化学结果而发挥三重作用。在发现反应的同时,我们还发现,重氮化合物、张力分子和缺电子烯烃可以作为有机卤化物和氧化还原活性酯以外的烷基自由基前体。值得注意的是,缺电子烯烃的结合是通过光诱导Pd-H的水合性增强而成为可能的,这代表了一种新的光激发反应模式。本帐户介绍了我们的发现和发展的可见光诱导钯催化,按类型的转换探索组织。鉴于该领域的快速发展,我们期望本报告将为读者提供指导原则和灵感,以设计和开发更有效和新颖的转换。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Accounts of Chemical Research
Accounts of Chemical Research 化学-化学综合
CiteScore
31.40
自引率
1.10%
发文量
312
审稿时长
2 months
期刊介绍: Accounts of Chemical Research presents short, concise and critical articles offering easy-to-read overviews of basic research and applications in all areas of chemistry and biochemistry. These short reviews focus on research from the author’s own laboratory and are designed to teach the reader about a research project. In addition, Accounts of Chemical Research publishes commentaries that give an informed opinion on a current research problem. Special Issues online are devoted to a single topic of unusual activity and significance. Accounts of Chemical Research replaces the traditional article abstract with an article "Conspectus." These entries synopsize the research affording the reader a closer look at the content and significance of an article. Through this provision of a more detailed description of the article contents, the Conspectus enhances the article's discoverability by search engines and the exposure for the research.
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