Skrotzki Eric A, Vandavasi Jaya Kishore, Newman Stephen G
Centre for Catalysis Research and Innovation, Department of Chemistry & Biomolecular Sciences, 10 Marie Curie, University of Ottawa, Ottawa, Ontario, Canada, K1N 6N5.
J Org Chem. 2021 Oct 15;86(20):14169-14176. doi: 10.1021/acs.joc.1c00768. Epub 2021 Jun 8.
Ozone is a powerful oxidant, most commonly used for oxidation of alkenes to carbonyls. The synthetic utility of other ozone-mediated reactions is hindered by its high reactivity and propensity to overoxidize organic molecules, including most solvents. This challenge can largely be mitigated by adsorbing both substrate and ozone onto silica gel, providing a solvent-free oxidation method. In this manuscript, a flow-based packed bed reactor approach is described that provides exceptional control of reaction temperature and time to achieve improved control and chemoselectivity over this challenging transformation. A powerful method to oxidize primary amines into nitroalkanes is achieved. Examples of pyridine, C-H bond, and arene oxidations are also demonstrated, confirming the system is generalizable to diverse ozone-mediated processes.
臭氧是一种强氧化剂,最常用于将烯烃氧化为羰基化合物。其他臭氧介导反应的合成效用受到其高反应活性以及过度氧化有机分子(包括大多数溶剂)倾向的阻碍。通过将底物和臭氧都吸附到硅胶上,可在很大程度上缓解这一挑战,从而提供一种无溶剂氧化方法。在本论文中,描述了一种基于流动的填充床反应器方法,该方法能出色地控制反应温度和时间,以实现对这一具有挑战性的转化过程更好的控制和化学选择性。实现了一种将伯胺氧化为硝基烷烃的有效方法。还展示了吡啶、C-H键和芳烃氧化的实例,证实该体系可推广至多种臭氧介导的反应过程。