Algemene Chemie , Vrije Universiteit Brussel , Pleinlaan 2 , 1050 Brussels , Belgium.
Department of Chemistry and Chemical Biology , Cornell University , Ithaca New York 14853 , United States.
Chem Rev. 2019 Nov 13;119(21):11291-11351. doi: 10.1021/acs.chemrev.9b00260. Epub 2019 Oct 8.
This review sets out to understand the reactivity of diradicals and how that may differ from monoradicals. In the first part of the review, we delineate the electronic structure of a diradical with its two degenerate or nearly degenerate molecular orbitals, occupied by two electrons. A classification of diradicals based on whether or not the two SOMOs can be located on different sites of the molecule is useful in determining the ground state spin. Important is a delocalized to localized orbital transformation that interchanges "closed-shell" to "open-shell" descriptions. The resulting duality is useful in understanding the dual reactivity of singlet diradicals. In the second part of the review, we examine, with a consistent level of theory, activation energies of prototypical radical reactions (dimerization, hydrogen abstraction, and addition to ethylene) for representative organic diradicals and diradicaloids in their two lowest spin states. Differences and similarities in reactivity of diradicals vs monoradicals, based on either a localized or delocalized view, whichever is suitable, are then discussed. The last part of this review begins with an extensive, comparative, and critical survey of available measures of diradical character and ends with an analysis of the consequences of diradical character for selected diradicaloids.
这篇综述旨在理解自由基的反应性以及它与单自由基的反应性有何不同。在综述的第一部分,我们描绘了一个自由基的电子结构,它有两个简并或近乎简并的分子轨道,被两个电子占据。基于两个 SOMO 是否可以位于分子的不同位置,对自由基进行分类,有助于确定基态自旋。重要的是一个离域到定域轨道的转变,它将“闭壳”描述转换为“开壳”描述。由此产生的双重性有助于理解单重态自由基的双重反应性。在综述的第二部分,我们用一致的理论水平,检查了原型自由基反应(二聚化、氢提取和加成到乙烯)的活化能,对于代表性的有机自由基和自由基在其两个最低自旋态。然后,根据适用的局部或离域观点,讨论了自由基与单自由基反应性的差异和相似之处。这篇综述的最后一部分从广泛的、比较的和批判性的角度调查了自由基特征的可用测量方法,并以对选定的自由基特征的分析结束。