Norton Joseph E, Briseno Alejandro L, Wudl Fred, Houk K N
Department of Chemistry and Biochemistry, University of California, Los Angeles, California 90095-1569, USA.
J Phys Chem A. 2006 Aug 17;110(32):9887-99. doi: 10.1021/jp061385w.
The electronic structures of a series of polythiaadamantanes from thiaadamantane through 2,4,6,8,9,10-hexathiaadamantane (HTA) have been analyzed using density functional theory calculations in conjunction with Hückel and natural bond orbital analysis. The effects of multiple sulfur p-type lone-pair orbital interactions on ionization potentials, hole mobilities, and electronic coupling have been determined. An overall increase in the average energy of the lone-pair orbitals as the number of sulfur atoms increases is predicted, with the exact positioning of the HOMO depending on specific lone-pair interactions. Separation of through-bond (TB) and through-space (TS) interactions between intramolecular sulfur atoms has been performed using localized molecular orbitals and model systems based on interacting hydrogen sulfide molecules. TB interations were found to reduce orbital splitting, while TS interactions were found to increase orbital splitting. TS interactions were more or less constant from one polythiaadamantane to the next, and the contributions of TB effects to individual orbital energies vary depending on the relative orientation of sulfur atoms as determined by the sigma molecular framework. Electronic coupling between intermolecular sulfur lone-pair orbitals was determined by investigating unique dimer pairs observed in the crystal structure of HTA. Electronic coupling is not as strong as expected given the short intermolecular S-S distances observed in the crystal structure. In general, B3LYP/6-31G(d) and B3LYP/6-311+G(d,p) give very similar orbital energies and splittings.
通过密度泛函理论计算结合休克尔和自然键轨道分析,对一系列从硫杂金刚烷到2,4,6,8,9,10-六硫杂金刚烷(HTA)的聚硫杂金刚烷的电子结构进行了分析。确定了多个硫p型孤对轨道相互作用对电离势、空穴迁移率和电子耦合的影响。预测随着硫原子数增加,孤对轨道的平均能量总体增加,最高占据分子轨道(HOMO)的精确位置取决于特定的孤对相互作用。利用定域分子轨道和基于相互作用硫化氢分子的模型体系,对分子内硫原子之间的键间(TB)和空间(TS)相互作用进行了分离。发现TB相互作用会减小轨道分裂,而TS相互作用会增加轨道分裂。从一种聚硫杂金刚烷到另一种聚硫杂金刚烷,TS相互作用或多或少是恒定的,TB效应对各个轨道能量的贡献因由σ分子骨架确定的硫原子相对取向而异。通过研究HTA晶体结构中观察到的独特二聚体对,确定了分子间硫孤对轨道之间的电子耦合。鉴于在晶体结构中观察到较短的分子间S-S距离,电子耦合并不像预期的那么强。一般来说,B3LYP/6-31G(d)和B3LYP/6-311+G(d,p)给出非常相似的轨道能量和分裂。