Korchagin Denis V, Akimov Alexander V, Savitsky Anton, Chapyshev Sergei V, Aldoshin Sergey M, Misochko Eugenii Ya
Institute of Problems of Chemical Physics , Russian Academy of Sciences , 142432 Chernogolovka , Moscow Region Russian Federation.
Faculty of Physics , Technical University Dortmund , Otto-Hahn-Strasse 4a , D-44227 Dortmund , Germany.
J Phys Chem A. 2018 Nov 15;122(45):8931-8937. doi: 10.1021/acs.jpca.8b09014. Epub 2018 Oct 31.
Previously unknown the steric heavy atom effect on magnetic anisotropy parameters of triplet phenyl nitrenes is reported. The heavy bromine atom effect is revealed by W-band EPR and theoretical investigations of triplet 2,4,6-tribromophenyl nitrenes bearing different substituents in positions 3 and 5 of the phenyl ring (1a, H/H; 1b, CN/CN; 1c, N/F; 1d, N/N; 1e, Cl/Cl; 1f, Br/Br). The zero-field splitting parameters of nitrenes 1a ( D = 0.9930 cm, E = 0.0261 cm), 1c ( D = 1.244 cm, E = 0.030 cm), and 1d ( D = 1.369 cm, E = 0.093 cm), generated by the photolysis of the corresponding azides in frozen methylcyclohexane solution at 5 K, were determined from the W-band EPR spectra. To clarify the origin of considerable differences in the experimental D values of nitrenes 1a, 1c, and 1d, extensive DFT and CASSCF calculations of these nitrenes as well as of model nitrenes 1b, 1e, and 1f were performed. The calculations show that all nitrenes have nearly the same magnitudes of the spin-spin interactions ( D ∼ 1 cm), but drastically differ in the spin-orbit coupling parameter (from D = 0.087 cm for 1a to D = 0.765 cm for 1f). Comprehensive analysis of various computational data showed that the magnitude of D of nitrenes 1a-f is the function of the N···Br distance between the nitrene nitrogen and the neighboring bromine atoms. The more bulky substituents are located in positions 3 and 5 of nitrenes 1a-1f, the smaller the N--Br distance and the larger D. These features indicate that the heavy atom effect on magnetic anisotropy of triplet phenyl nitrenes originates from the through-space rather than through-bond electronic interactions between the bromine atoms and the nitrene unit.
本文报道了三重态苯基氮宾磁各向异性参数中此前未知的空间重原子效应。通过W波段电子顺磁共振(EPR)以及对苯环3和5位带有不同取代基的三重态2,4,6 - 三溴苯基氮宾(1a,H/H;1b,CN/CN;1c,N/F;1d,N/N;1e,Cl/Cl;1f,Br/Br)的理论研究,揭示了重溴原子效应。在5K的冷冻甲基环己烷溶液中,通过光解相应叠氮化物生成的氮宾1a(D = 0.9930 cm,E = 0.0261 cm)、1c(D = 1.244 cm,E = 0.030 cm)和1d(D = 1.369 cm,E = 0.093 cm)的零场分裂参数,由W波段EPR光谱确定。为了阐明氮宾1a、1c和1d实验D值存在显著差异的原因,对这些氮宾以及模型氮宾1b、1e和1f进行了广泛的密度泛函理论(DFT)和完全活性空间自洽场(CASSCF)计算。计算结果表明,所有氮宾的自旋 - 自旋相互作用大小相近(D ∼ 1 cm),但自旋 - 轨道耦合参数差异很大(从1a的D = 0.087 cm到1f的D = 0.765 cm)。对各种计算数据的综合分析表明,氮宾1a - f的D大小是氮宾氮原子与相邻溴原子之间N···Br距离的函数。氮宾1a - 1f的3和5位取代基体积越大,N - Br距离越小,D越大。这些特征表明,重原子对三重态苯基氮宾磁各向异性的影响源于溴原子与氮宾单元之间的空间电子相互作用,而非键间电子相互作用。