Sheng Huaming, Ma Xin, Lei Hao-Ran, Milton Jacob, Tang Weijuan, Jin Chunfen, Gao Jinshan, Wittrig Ashley M, Archibold Enada F, Nash John J, Kenttämaa Hilkka I
Department of Chemistry, Purdue University, 560 Oval Drive, West Lafayette, IN 47907, USA.
Chemphyschem. 2018 Nov 5;19(21):2839-2842. doi: 10.1002/cphc.201800646. Epub 2018 Sep 11.
We report herein a gas-phase reactivity study on a para-benzyne cation and its three cyano-substituted, isomeric derivatives performed using a dual-linear quadrupole ion trap mass spectrometer. All four biradicals were found to undergo primary and secondary radical reactions analogous to those observed for the related monoradicals, indicating the presence of two reactive radical sites. The reactivity of all biradicals is substantially lower than that of the related monoradicals, as expected based on the singlet ground states of the biradicals. The cyano-substituted biradicals show substantially greater reactivity than the analogous unsubstituted biradical. The greater reactivity is rationalized by the substantially greater (calculated) electron affinity of the radical sites of the cyano-substituted biradicals, which results in stabilization of their transition states through polar effects. This finding is in contrast to the long-standing thinking that the magnitude of the singlet-triplet splitting controls the reactivity of para-benzynes.
我们在此报告一项使用双线性四极杆离子阱质谱仪对对苯炔阳离子及其三种氰基取代的异构衍生物进行的气相反应性研究。发现所有这四种双自由基都经历了与相关单自由基所观察到的类似的一级和二级自由基反应,表明存在两个反应性自由基位点。正如基于双自由基的单重态基态所预期的那样,所有双自由基的反应性都明显低于相关单自由基的反应性。氰基取代的双自由基显示出比类似的未取代双自由基明显更高的反应性。反应性更高的原因是氰基取代的双自由基的自由基位点(计算得出)具有明显更高的电子亲和力,这通过极性效应导致其过渡态的稳定。这一发现与长期以来认为单重态 - 三重态分裂的大小控制对苯炔反应性的观点形成对比。