Png Zhuang Mao, Zeng Huining, Ye Qun, Xu Jianwei
Institute of Materials Research and Engineering, Agency for Science, Technology and Research (A*STAR), 2 Fusionopolis Way, Innovis, #08-03, Singapore, 138634, Singapore.
Department of Chemistry, National University of Singapore, 3 Science Drive 3, Singapore, 117543, Singapore.
Chem Asian J. 2017 Sep 5;12(17):2142-2159. doi: 10.1002/asia.201700442. Epub 2017 Jul 5.
Inverse-electron-demand Diels-Alder (iEDDA) reactions are an intriguing class of cycloaddition reactions that have attracted increasing attention for their application in bioorthogonal chemistry, the total synthesis of natural products, and materials science. In many cases, the application of the iEDDA reaction has been demonstrated as an innovative approach to achieve target structures. The theoretical aspects of this class of reactions are of particular interest for scientists as a means to understand the various factors, such as steric strain and electron density of the attached groups, that govern the reaction and thus to elucidate the reaction mechanism. This review aims to summarize both theoretical investigations and application-driven research work on the iEDDA reaction. First, the historical aspects and the theoretical basis of the reaction, especially recent advances in time-dependent density functional theory (TD-DFT) calculations, as well as catalysis strategies will be highlighted and discussed. Second, the applications of this novel reaction in the context of materials science, bioorthogonal chemistry, and total synthesis of natural products will be elaborated with selected recent examples. The challenges and opportunities of the iEDDA reaction will be highlighted to give more insight into its potential applications in many other research areas.
逆电子需求狄尔斯-阿尔德(iEDDA)反应是一类引人入胜的环加成反应,因其在生物正交化学、天然产物全合成及材料科学中的应用而受到越来越多的关注。在许多情况下,iEDDA反应的应用已被证明是实现目标结构的一种创新方法。这类反应的理论层面对于科学家来说特别有吸引力,它是理解诸如空间应变和连接基团的电子密度等各种影响反应的因素从而阐明反应机理的一种手段。本综述旨在总结关于iEDDA反应的理论研究和应用驱动的研究工作。首先,将重点介绍和讨论该反应的历史背景和理论基础,特别是含时密度泛函理论(TD-DFT)计算的最新进展以及催化策略。其次,将通过近期的精选实例详细阐述这种新型反应在材料科学、生物正交化学和天然产物全合成方面的应用。将突出iEDDA反应面临的挑战和机遇,以便更深入了解其在许多其他研究领域的潜在应用。