Parvanov Vencislav M, Schenter Gregory K, Hess Nancy J, Daemen Luke L, Hartl Monika, Stowe Ashley C, Camaioni Donald M, Autrey Tom
Fundamental and Computational Sciences Directorate, Pacific Northwest National Laboratory, Richland, WA 99352, USA.
Dalton Trans. 2008 Sep 7(33):4514-22. doi: 10.1039/b718138h. Epub 2008 Jul 14.
The activation energies for rotations in low-temperature orthorhombic ammonia borane were analyzed and characterized in terms of electronic structure theory. The perdeuterated (11)B-enriched ammonia borane, (11)BD(3)ND(3), sample was synthesized, and the structure was refined from neutron powder diffraction data at 175 K. This temperature has been chosen as median of the range of previously reported nuclear magnetic resonance spectroscopy measurements of these rotations. A representative molecular cluster model was assembled from the refined geometry, and the activation energies were calculated and characterized by analysis of the environmental factors that control the rotational dynamics. The barrier for independent NH(3) rotation, E(a) = 12.7 kJ mol(-1), largely depends on the molecular conformational torsion in the solid-state geometry. The barrier for independent BH(3) rotation, E(a) = 38.3 kJ mol(-1), results from the summation of the effect of molecular torsion and large repulsive intermolecular hydrogen-hydrogen interactions. However, a barrier of E(a) = 31.1 kJ mol(-1) was calculated for internally correlated rotation with preserved molecular conformation. Analysis of the barrier heights and the corresponding rotational pathways shows that rotation of the BH(3) group involves strongly correlated rotation of the NH(3) end of the molecule. This observation suggests that the barrier from previously reported measurement of BH(3) rotation corresponds to H(3)B-NH(3) correlated rotation.
利用电子结构理论对低温正交氨硼烷中旋转的活化能进行了分析和表征。合成了全氘代(11)B富集的氨硼烷(11)BD₃ND₃样品,并根据175 K下的中子粉末衍射数据对其结构进行了精修。选择该温度作为先前报道的这些旋转的核磁共振光谱测量范围的中值。从精修的几何结构组装了一个代表性的分子簇模型,并通过分析控制旋转动力学的环境因素来计算和表征活化能。独立NH₃旋转的势垒Eₐ = 12.7 kJ/mol,很大程度上取决于固态几何结构中的分子构象扭转。独立BH₃旋转的势垒Eₐ = 38.3 kJ/mol,是分子扭转效应和强烈的分子间氢-氢排斥相互作用之和的结果。然而,对于保持分子构象的内相关旋转,计算出的势垒为Eₐ = 31.1 kJ/mol。对势垒高度和相应旋转路径的分析表明,BH₃基团的旋转涉及分子NH₃端的强相关旋转。这一观察结果表明,先前报道的BH₃旋转测量中的势垒对应于H₃B-NH₃相关旋转。