Department of Chemistry , University of Basel , St. Johanns-Ring 19 , CH-4056 Basel , Switzerland.
Department of Chemistry , The University of Tokyo , 7-3-1 Hongo , Bunkyo-ku, Tokyo 113-0033 , Japan.
J Org Chem. 2018 Apr 20;83(8):4769-4774. doi: 10.1021/acs.joc.8b00656. Epub 2018 Apr 2.
We demonstrate that the electrocyclic (EC) ring-closure of cethrene in solution proceeds in a conrotatory mode both thermally and photochemically. The facile photochemical EC process promises that cethrene can serve as an efficient chiroptical switch operated solely by light. As for the thermally activated EC reaction, a low reaction barrier and a solvation effect on the EC rate indicate that the C-symmetric pathway predicted by DFT calculations might not be the correct mechanism. Instead, we argue that the molecular symmetry decreases along the reaction coordinate as a consequence of the low-energy singlet excited state in this diradicaloid molecule, which might lead to a lower activation energy in accord with that determined through kinetic studies. Cethrene, therefore, represents a thought-provoking molecular chameleon of the Woodward-Hoffmann rules that puts our chemical concepts and intuition to test.
我们证明了在溶液中,赛烯的电环化(EC)环闭反应无论是在热激发还是光激发条件下均以同旋模式进行。这种容易发生的光致 EC 过程预示着赛烯可以作为一种高效的手性光学开关,仅通过光照即可进行操作。对于热激活的 EC 反应,低反应势垒和对 EC 速率的溶剂化效应表明,DFT 计算预测的 C 对称途径可能不是正确的机制。相反,我们认为,由于这种自由基双烯分子中低能量的单重激发态的存在,分子对称性沿着反应坐标降低,这可能导致较低的活化能,与通过动力学研究确定的活化能一致。因此,赛烯代表了伍德沃德-霍夫曼规则的一个发人深省的分子变色龙,它使我们的化学概念和直觉受到了挑战。