Desnoyer Addison N, See Xin Yi, Tonks Ian A
Department of Chemistry, University of Minnesota-Twin Cities, 207 Pleasant Street SE, Minneapolis, Minnesota 55455, United States.
Organometallics. 2018 Dec 10;37(23):4327-4331. doi: 10.1021/acs.organomet.8b00522. Epub 2018 Sep 10.
2-Azirines are versatile coupling partners for the synthesis of N-heterocycles. Herein, we present our studies on the reactivity of CpTi(BTMSA) (; BTMSA = bis(trimethylsilyl)acetylene) with a variety of azirines. In all the cases examined, the initial organometallic products formed are diazatitanacyclohexenes, presumably formed via oxidative addition of Ti(II) into the C-N bond of the azirine to form an azatitanacyclobutene intermediate, followed by C═N insertion of a second equivalent of azirine into the Ti-C bond to form the observed products. Diazatitanacyclohexene , bearing phenyl substituents and derived from 2,3-diphenyl-2-azirine, fragments to form an azabutadiene and nitrile, which is shown to be catalytic in the presence of excess 2,3-diphenyl-2-azirine. H-substituted complex , derived from 3-phenyl-2-azirine, decomposes via protonolysis of the Cp ligands. In contrast, the methyl-substituted diazatitanacyclohexene , derived from 2-methyl-3-phenyl-2-azirine, is thermally robust. Attempts to trap the putative azatitanacyclobutene intermediate with an alkyne were unsuccessful, resulting instead in the formation of titanacyclopentadiene () from coupling of alkyne with BTMSA. Initial reactivity studies found that could be protonolyzed with AcOH to form mixtures of pyrrole and aziridine products, whereas reacting with MeOH results solely in the formation of 2,4-dimethyl-3,5-diphenyl-1-pyrrole.
2-氮杂环丙烯是合成氮杂环化合物的多功能偶联伙伴。在此,我们展示了关于CpTi(BTMSA)(BTMSA = 双(三甲基硅基)乙炔)与多种氮杂环丙烯反应活性的研究。在所有研究的案例中,最初形成的有机金属产物是二氮杂钛环己烯,推测是通过Ti(II)对氮杂环丙烯的C-N键进行氧化加成形成氮杂钛环丁烯中间体,随后第二个当量的氮杂环丙烯的C═N插入到Ti-C键中形成观察到的产物。带有苯基取代基且衍生自2,3-二苯基-2-氮杂环丙烯的二氮杂钛环己烯分解形成氮杂丁二烯和腈,在过量的2,3-二苯基-2-氮杂环丙烯存在下,该腈显示出催化作用。源自3-苯基-2-氮杂环丙烯的H-取代配合物通过Cp配体的质子解作用分解。相比之下,源自2-甲基-3-苯基-2-氮杂环丙烯的甲基取代二氮杂钛环己烯具有热稳定性。尝试用炔烃捕获假定的氮杂钛环丁烯中间体未成功,反而导致炔烃与BTMSA偶联形成钛环戊二烯()。初步反应活性研究发现,可以用AcOH进行质子解形成吡咯和氮杂环丙烷产物的混合物,而与MeOH反应仅生成2,4-二甲基-3,5-二苯基-1-吡咯。