Siddiqui Rafia, Ali Rashid
Department of Chemistry, Jamia Millia Islamia, New Delhi-110025, India.
Beilstein J Org Chem. 2020 Feb 26;16:248-280. doi: 10.3762/bjoc.16.26. eCollection 2020.
In recent years, the research area of direct C-H bond functionalizations was growing exponentially not only due to the ubiquity of inert C-H bonds in diverse organic compounds, including bioactive natural and nonnatural products, but also due to its impact on the discovery of pharmaceutical candidates and the total synthesis of intricate natural products. On the other hand, more recently, the field of photoredox catalysis has become an indispensable and unparalleled research topic in modern synthetic organic chemistry for the constructions of challenging bonds, having the foremost scope in academia, pharmacy, and industry. Therefore, the development of green, simpler, and effective methodologies to accomplish direct C-H bond functionalization is well overdue and highly desirable to the scientific community. In this review, we mainly highlight the impact on, and the utility of, photoredox catalysts in inert and C-H bond functionalizations. Although a surge of research papers, including reviews, demonstrating C-H functionalizations have been published in this vital area of research, to our best knowledge, this is the first review that focuses on and C-H functionalizations by photoredox catalysis to provide atom- and step-economic organic transformations. We are certain that this review will act as a promoter to highlight the application of photoredox catalysts for the functionalization of inert bonds in the domain of synthetic organic chemistry.
近年来,直接C-H键官能团化的研究领域呈指数级增长,这不仅是因为惰性C-H键在包括生物活性天然和非天然产物在内的各种有机化合物中普遍存在,还因为它对药物候选物的发现以及复杂天然产物的全合成产生影响。另一方面,最近,光氧化还原催化领域已成为现代有机合成化学中构建具有挑战性的化学键不可或缺且无与伦比的研究课题,在学术界、制药业和工业领域具有最重要的地位。因此,开发绿色、更简单且有效的方法来实现直接C-H键官能团化早就迫在眉睫,并且是科学界高度渴望的。在本综述中,我们主要强调光氧化还原催化剂在惰性C-H键官能团化中的影响和效用。尽管在这个重要的研究领域已经发表了大量包括综述在内的关于C-H官能团化的研究论文,但据我们所知,这是第一篇专注于通过光氧化还原催化实现C-H官能团化以提供原子经济和步骤经济的有机转化的综述。我们确信,这篇综述将成为一个推动者,以突出光氧化还原催化剂在有机合成化学领域中对惰性键官能团化的应用。