Department of Chemistry, Georgetown University, 37th & O Street, Washington, DC 20057-1227, USA.
Phys Chem Chem Phys. 2012 Aug 14;14(30):10713-25. doi: 10.1039/c2cp41018d. Epub 2012 Jul 2.
Unusually long bonds or short intermolecular contacts occur in the title compounds reminiscent of pancake bonding. Pancake bonding interactions seem analogous to π-stacking interactions, but they display much shorter contact distances than normally seen in van der Waals (vdW) dimers. The interpretation of these SN and SeN containing structures has been an outstanding challenge for some time. The antibonding (π*) singly occupied molecular orbital (SOMO) of the radical is the source of two-electron multicenter bonding (2e/mc). Preferred conformations thus can be traced back to SOMO-SOMO overlap. We used several computational methods to understand the nature of pancake bonding in the title compounds including four wave function methods (WFT) and a dozen density functional theories (DFT) including empirical dispersion corrections. We used experimental data and high level CCSD(T)/6-311++G(d,p) and MRPT2/6-311++G(d,p) calculations for comparison. The analysis provided the interpretation a wealth of experimental data including conformational preferences of these SN and SeN containing radical dimers leading to a better overall understanding of pancake bonding. Analysis of the various components of the inter-radical interactions showed that SOMO-SOMO bonding interaction and dispersion interaction contribute to the binding energy and neither of these interactions alone is sufficient to bind the dimer. The dimer is predicted to show weak diradical character.
标题化合物中存在异常长的键或短的分子间接触,使人联想到煎饼键合。煎饼键合相互作用类似于π堆积相互作用,但它们的接触距离比范德华(vdW)二聚体通常看到的要短得多。这些含有 SN 和 SeN 的结构的解释一直是一个悬而未决的挑战。自由基的反键(π*)单占据分子轨道(SOMO)是两电子多中心键(2e/mc)的来源。因此,优先构象可以追溯到 SOMO-SOMO 重叠。我们使用了几种计算方法来理解标题化合物中煎饼键合的性质,包括四种波函数方法(WFT)和十几个密度泛函理论(DFT),包括经验色散校正。我们使用实验数据和高水平 CCSD(T)/6-311++G(d,p)和 MRPT2/6-311++G(d,p)计算进行比较。分析提供了对大量实验数据的解释,包括这些含有 SN 和 SeN 的自由基二聚体的构象偏好,从而更好地理解了煎饼键合。对自由基间相互作用的各种成分的分析表明,SOMO-SOMO 成键相互作用和色散相互作用有助于结合能,而这两种相互作用都不足以结合二聚体。预测二聚体表现出较弱的双自由基特性。