Brufani Giulia, Di Erasmo Benedetta, Li Chao-Jun, Vaccaro Luigi
Laboratory of Green S.O.C., Dipartimento di Chimica, Biologia e Biotecnologie, Università degli Studi di Perugia Via Elce di Sotto 8 06123 Perugia Italy
Department of Chemistry, FRQNT Centre for Green Chemistry and Catalysis, McGill University 801 Sherbrooke Street West Montreal QC H3A0B8 Canada.
Chem Sci. 2024 Feb 21;15(11):3831-3871. doi: 10.1039/d4sc00687a. eCollection 2024 Mar 13.
In the vast majority of top-selling pharmaceutical and industrial products, phenolic structural motifs are highly prevalent. Non-functionalized simple phenols serve as building blocks in the synthesis of value-added chemicals. It is worth mentioning that lignin, being the largest renewable biomass source of aromatic building blocks in nature, mainly consists of phenolic units, which enable the production of structurally diverse phenols. Given their remarkable applicability in the chemical value chain, many efforts have been devoted to increasing the molecular complexity of the phenolic scaffold. Among the key techniques, direct functionalization of Csp-H is a powerful tool, enabling the construction of new Csp-C bonds in an economical and atomic manner. Herein we present and summarize the large plethora of direct Csp-H functionalization methods that enables scaffold diversification of simple, unprotected phenols, leading to the formation of new Csp-C bonds. In this review article, we intend to summarize the contributions that appeared in the literature mainly in the last 5 years dealing with the functionalization of unprotected phenols, both catalytic and non-catalytic. Our goal is to highlight the key findings and the ongoing challenges in the stimulating and growing research dedicated to the development of new protocols for the valorization of phenols.
在绝大多数畅销的医药和工业产品中,酚类结构单元极为常见。未官能化的简单酚类作为合成高附加值化学品的基石。值得一提的是,木质素作为自然界中最大的可再生芳香族结构单元生物质来源,主要由酚类单元组成,这使得能够生产结构多样的酚类。鉴于它们在化学价值链中具有显著的适用性,人们致力于增加酚类骨架的分子复杂性。在关键技术中,Csp-H的直接官能化是一种强大的工具,能够以经济且原子经济性的方式构建新的Csp-C键。在此,我们展示并总结了大量直接Csp-H官能化方法,这些方法能够实现简单、未受保护的酚类的骨架多样化,从而形成新的Csp-C键。在这篇综述文章中,我们旨在总结主要在过去5年文献中出现的有关未受保护酚类官能化的贡献,包括催化和非催化方面。我们的目标是突出在致力于开发酚类增值新方案的蓬勃发展的研究中的关键发现和持续挑战。