Jana Sripati, Pei Chao, Empel Claire, Koenigs Rene M
Institute of Organic Chemistry, RWTH Aachen University, Landoltweg 1, 52074, Aachen, Germany.
Angew Chem Int Ed Engl. 2021 Jun 7;60(24):13271-13279. doi: 10.1002/anie.202100299. Epub 2021 May 5.
Controlling the reactivity of carbene intermediates is a key parameter in the development of selective carbene transfer reactions and is usually achieved by metal complexes via singlet metal-carbene intermediates. In this combined experimental and computational studies, we show that the reactivity of free diaryl carbenes can be controlled by the electronic properties of the substituents without the need of external additives. The introduction of electron-donating and -withdrawing groups results in a significant perturbation of singlet triplet energy splitting of the diaryl carbene intermediate and of activation energies of consecutive carbene transfer reactions. This strategy now overcomes a long-standing paradigm in the reactivity of diaryl carbenes and allows the realization of highly chemoselective carbene transfer reactions with alkynes. We could show that free diaryl carbenes can be readily accessed via photolysis of the corresponding diazo compounds and that these carbenes can undergo highly chemoselective cyclopropenation, cascade, or C-H functionalization reactions. Experimental and theoretical mechanistic analyses confirm the participation of different carbene spin states and rationalize for the observed reactivity.
控制卡宾中间体的反应活性是开发选择性卡宾转移反应的关键参数,通常通过金属配合物经由单线态金属卡宾中间体来实现。在这项结合实验和计算的研究中,我们表明,无需外部添加剂,游离二芳基卡宾的反应活性可通过取代基的电子性质来控制。供电子和吸电子基团的引入会导致二芳基卡宾中间体的单线态-三线态能量分裂以及连续卡宾转移反应的活化能发生显著扰动。这一策略现在克服了二芳基卡宾反应活性方面长期存在的范式,并使得与炔烃发生高度化学选择性的卡宾转移反应成为可能。我们能够证明,通过相应重氮化合物的光解可以很容易地得到游离二芳基卡宾,并且这些卡宾可以发生高度化学选择性的环丙烷化、串联或C-H官能化反应。实验和理论机理分析证实了不同卡宾自旋态的参与,并对观察到的反应活性做出了合理的解释。