Roth Alexander D, Ramgren David R, Wen Yuewei, Michie Megan S, Thamattoor Dasan M
Department of Chemistry, Colby College, Waterville, Maine 04901, United States.
J Org Chem. 2024 Jun 7;89(11):7503-7512. doi: 10.1021/acs.joc.4c00147. Epub 2024 May 29.
To address the scarcity of generally applicable photochemical routes to allenylidenes in solution, phenanthrene-based sources have been investigated. Specifically, the syntheses of 1-vinylidene-1a,9b-dihydro-1-cyclopropa[]phenanthrene, 1-(2-phenylvinylidene)-1a,9b-dihydro-1-cyclopropa[]phenanthrene, and 1-(2-methylvinylidene)-1a,9b-dihydro-1-cyclopropa[]phenanthrene, photochemical precursors to propadienylidene, 3-phenylpropadienylidene, and 3-methylpropadienylidene have been carried out. Photolysis of these new precursors in olefin traps and benzene afforded the expected cyclopropane adducts of the corresponding allenylidenes. Quantum chemical calculations show that the ground state of all three carbenes is a singlet with a singlet-triplet gap of ∼29, 30, and 33 kcal/mol for propadienylidene, 3-phenylpropadienylidene, and 3-methylpropadienylidene, respectively.
为了解决溶液中普遍适用的生成亚丙二烯基的光化学途径稀缺的问题,已对菲基源进行了研究。具体而言,已开展了1-亚乙烯基-1a,9b-二氢-1-环丙并[ ]菲、1-(2-苯基亚乙烯基)-1a,9b-二氢-1-环丙并[ ]菲和1-(2-甲基亚乙烯基)-1a,9b-二氢-1-环丙并[ ]菲的合成,它们分别是丙二烯基、3-苯丙二烯基和3-甲基丙二烯基的光化学前体。这些新前体在烯烃捕集剂和苯中进行光解,得到了相应亚丙二烯基的预期环丙烷加合物。量子化学计算表明,所有三种卡宾的基态均为单重态,丙二烯基、3-苯丙二烯基和3-甲基丙二烯基的单重态-三重态能隙分别约为29、30和33 kcal/mol。