Paira Rupankar, Singh Bhagat, Hota Pradip Kumar, Ahmed Jasimuddin, Sau Samaresh Chandra, Johnpeter Justin P, Mandal Swadhin K
Department of Chemical Sciences, Indian Institute of Science Education and Research , Kolkata, Mohanpur-741246, India.
J Org Chem. 2016 Mar 18;81(6):2432-41. doi: 10.1021/acs.joc.6b00002. Epub 2016 Feb 25.
Open-shell phenalenyl chemistry has widely been explored in the last five decades demonstrating its potential in various applications including molecular switch, spin memory device, molecular battery, cathode material, etc. In this article, we have explored another new direction of open-shell phenalenyl chemistry toward transition metal-free catalytic C-H functionalization process. A phenalenyl ligand, namely, 9-methylamino-phenalen-1-one (4a), promoted chelation-assisted single electron transfer (SET) process, which facilitates the C-H functionalization of unactivated arenes to form the biaryl products. The present methodology offers a diverse substrate scope, which can be operated without employing any dry or inert conditions and under truly transition metal based catalyst like loading yet avoiding any expensive or toxic transition metal. This not only is the first report on the application of phenalenyl chemistry in C-H functionalization process but also provides a low-catalyst loading organocatalytic system (up to 0.5 mol % catalyst loading) as compared to the existing ones (mostly 20-40 mol %), which has taken advantage of long known phenalenyl based radical stability through the presence of its low-lying nonbonding molecular orbital.
在过去的五十年里,人们广泛探索了开壳芴化学,证明了其在包括分子开关、自旋存储器件、分子电池、阴极材料等各种应用中的潜力。在本文中,我们探索了开壳芴化学在无过渡金属催化的C-H官能化过程中的另一个新方向。一种芴配体,即9-甲基氨基-芴-1-酮(4a),促进了螯合辅助的单电子转移(SET)过程,这有助于未活化芳烃的C-H官能化以形成联芳基产物。本方法具有广泛的底物范围,无需任何干燥或惰性条件,且在真正基于过渡金属的催化剂负载量下即可操作,同时避免使用任何昂贵或有毒的过渡金属。这不仅是芴化学在C-H官能化过程中应用的首次报道,而且与现有的体系(大多为20-40 mol%)相比,提供了一种低催化剂负载量的有机催化体系(催化剂负载量高达0.5 mol%),该体系通过其低能非键分子轨道的存在利用了早已为人所知的基于芴的自由基稳定性。