Department of Chemistry, Temple University, 1901 N. 13th St., Philadelphia, PA, 19122, USA.
Present address: Department of Chemistry, Yale University, 225 Prospect St., New Haven, CT, 06520, USA.
Angew Chem Int Ed Engl. 2019 Nov 4;58(45):16181-16187. doi: 10.1002/anie.201909868. Epub 2019 Sep 20.
Despite their broad utility, the synthesis of ortho-quinones remains a significant challenge, in particular, access to electron-deficient derivatives remains an unsolved problem. Reported here is the first general method for the synthesis of electron-deficient ortho-quinones by direct oxidation of phenols. The reaction is enabled by a novel bidentate nitrogen-ligated iodine(V) reagent, a previously unexplored class of compounds which we have termed Bi(N)-HVIs. The reaction is extremely general and proceeds with excellent regioselectivity for the ortho over para isomer. Functionalization of the ortho-quinone products was examined, resulting in a facile one-pot synthesis of catechols, as well as the incorporation of a variety of heteroatom nucleophiles. This method represents the first synthetic application of Bi(N)-HVIs and demonstrates their potential as a platform for the further development of highly reactive, but also highly tunable, I(V) reagents.
尽管它们具有广泛的用途,但邻醌的合成仍然是一个重大的挑战,特别是获得缺电子衍生物仍然是一个未解决的问题。本文报道了一种通过直接氧化苯酚合成缺电子邻醌的通用方法。该反应是通过一种新型的双齿氮配位碘(V)试剂实现的,这是一类以前未被探索的化合物,我们称之为 Bi(N)-HVIs。该反应具有极高的通用性,对邻位异构体具有极好的区域选择性。对邻醌产物进行了功能化研究,实现了邻苯二酚的简便一锅合成,以及各种杂原子亲核试剂的引入。该方法代表了 Bi(N)-HVIs 的首次合成应用,并展示了它们作为进一步开发高反应性但也高度可调的 I(V)试剂的平台的潜力。