Sui Yongqiang, Glaser Rainer, Sarkar Ujjal, Gates Kent
Departments of Chemistry and Biochemistry, University of Missouri [Formula: see text] Columbia, Columbia, Missouri 65211.
J Chem Theory Comput. 2007 May;3(3):1091-9. doi: 10.1021/ct700051j.
The effects have been studied of mono- and dibenzannulation of a benzyl radical with hybrid density functional theory (B3LYP) and quadratic configuration interaction theory (QCISD). Bond dissociation energies and enthalpies are reported that were determined at the common level QCISD/6-311G**//B3LYP/6-31G* for the benzylic C-H bonds of toluene 1H, the monobenzannulated polycyclic aromatic hydrocarbons (PAH) 1- and 2-methylnaphthalene 2H and 3H, the dibenzannulated PAHs 9-methylanthracene 4H and 9-methylphenanthrene 5H, and the model hydrocarbons 1-phenylpropene 6H and propene 7H. The conformational preferences and the symmetries of 1H-7H and of their corresponding radicals 1-7 have been determined. The analysis of the electron and spin density distributions of radicals 1-7 at the QCI level are reported, and these high-level data are discussed in comparison to results obtained with density functional theory and with an awareness of a general perception shaped by Hückel molecular orbital theory. The results show in a compelling fashion that electron and spin delocalization onto an annulated arene is not the decisive principle for stabilization of the benzyl radicals formed by homolysis of the methylated PAHs C10H7-CH3 and C14H9-CH3, and instead, the analysis of QCI spin density distributions suggests that spin delocalization onto annulated arenes is avoided as much as possible while spin polarization does occur to a significant extent.
利用杂化密度泛函理论(B3LYP)和二次组态相互作用理论(QCISD)研究了苄基自由基的单苯并环化和二苯并环化效应。报告了键解离能和焓,这些数据是在QCISD/6 - 311G**//B3LYP/6 - 31G*这一常用水平下测定的,涉及甲苯1H、单苯并环化的多环芳烃(PAH)1 - 和2 - 甲基萘2H及3H、二苯并环化的PAH 9 - 甲基蒽4H和9 - 甲基菲5H以及模型烃1 - 苯基丙烯6H和丙烯7H的苄基C - H键。已确定了1H - 7H及其相应自由基1 - 7的构象偏好和对称性。报告了在QCI水平下对自由基1 - 7的电子和自旋密度分布的分析,并将这些高水平数据与密度泛函理论得到的结果进行了比较,同时考虑到由休克尔分子轨道理论形成的一般观念。结果有力地表明,电子和自旋离域到稠合芳烃上并非甲基化PAHs C10H7 - CH3和C14H9 - CH3均裂形成的苄基自由基稳定化的决定性原则,相反,QCI自旋密度分布分析表明,自旋离域到稠合芳烃上尽可能地被避免,而自旋极化在很大程度上确实发生了。