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Gas-phase ion-molecule reaction studies of pi-type radicals and biradicals: Description and characterization of a novel tandem flowing afterglow - guided ion beam apparatus.

机译:π型自由基和双自由基的气相离子分子反应研究:新型串联流动余辉引导离子束装置的描述和表征。

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The gas-phase ion-molecule reactions of pi-type radicals and biradicals were investigated by using Fourier-transform ion cyclotron resonance (FT-ICR) mass spectrometry. Reaction exothermicities, thermodynamic quantities, and singlet-triplet gaps were estimated by density functional theory and ab initio calculations. The first study examined the rate of hydrogen the use of an ionic curve-crossing model. Second, the reactivity of four delocalized pi-type biradicals, the 2,6-dimethylenepyridinium ion, N-(3-methylenephenyl)-3-methylenepyridinium ion, the N-phenyl-3,5-dimethylenepyridinium ion and the N-(3,5-dimethylphenyl)pyridinium ion were investigated. The predicted closed-shell singlet biradical (2,6-dimethylenepyridinium ion) was found to react by both radical and electrophilic pathways with the reagents studied. The other biradicals exhibited exclusive radical type reactivity, state. The third reaction study involved the characterization a distonic nitrene ion, N-phenyl-3-nitrenopyridinium ion, that was produced in the gas phase from an azide precursor. The reactions of the distonic nitrene ion revealed that a mixture of isomers were generated upon nitrogen extrusion from the N-phenyl-3-azidopyridinum ion. The ring-expanded and ring-contracted isomers displayed electrophilic and acidic reactivity, respectively. The triplet nitrene, which exhibited radical type reactivity, was found to be the most dominant of the three isomeric ions observed. Finally, the description and characterization of a new tandem flowing afterglow - guided ion beam instrument are presented in the last chapter. The instrument will be used to obtain thermochemical values, such as bond dissociation energies and gas-phase basicities, for distonic ions of the types described in the previous chapters.
机译:利用傅立叶变换离子回旋共振(FT-ICR)质谱技术研究了π型自由基与双自由基的气相离子分子反应。反应放热度,热力学量和单重态-三重态间隙通过密度泛函理论和从头算计算来估计。第一项研究使用离子交叉曲线模型研究了氢的速率。其次,四个离域pi型双自由基,2,6-二亚甲基吡啶离子,N-(3-亚甲基苯基)-3-亚甲基吡啶离子,N-苯基-3,5-二亚甲基吡啶离子和N-(3研究了5-(5-二甲基苯基)吡啶鎓离子。发现所预测的闭壳单线态双自由基(2,6-二亚甲基吡啶鎓离子)通过自由基和亲电途径与所研究的试剂反应。其他双基自由基表现出排他性自由基类型的反应性,状态。第三项反应研究涉及表征叠氮化氮离子,即由叠氮化物前体在气相中生成的N-苯基-3-氮杂吡啶鎓离子。二烯氮离子的反应表明,氮从N-苯基-3-叠氮基吡啶鎓离子中挤出后会生成异构体的混合物。扩环和缩环异构体分别显示出亲电和酸性反应性。发现具有自由基类型反应性的三重态氮烯是观察到的三个异构离子中最主要的。最后,在最后一章中介绍了一种新型串联流动余辉导向离子束仪的描述和特性。该仪器将用于获取前几章所述类型的二元离解离子的热化学值,例如键离解能和气相碱度。

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