Fellowes Thomas, Sani Marc A, White Jonathan M
Bio21 Institute and School of Chemistry, University of Melbourne, Parkville, VIC 3010, Australia.
Chemistry. 2024 May 28;30(30):e202400385. doi: 10.1002/chem.202400385. Epub 2024 Apr 11.
Se-NMR is used to characterise several chalcogen bonded complexes of derivatives of the organoselenium drug ebselen, exploring a range of electron demand. NMR titration experiments support the intuitive understanding that chalcogen bond donors bearing more electron withdrawing substituents give rise stronger chalcogen bonds. The chemical shift of the selenium nucleus is also shown to move upfield as it participates in a chalcogen bond. Solid-state NMR is used to explore chalcogen bonding in co-crystals. Due to the lack of molecular reorientation on the NMR timescale in the solid state, the shape of the chemical shift tensor can be determined using this technique. A range of co-crystals are shown to have extremely large chemical shift anisotropy, which suggests a strongly anisotropic electron density distribution around the selenium atom. A single crystal NMR experiment was conducted using one of the co-crystals, affording the absolute orientation of the chemical shift tensor within the crystal. This showed that the selenium nucleus is strongly shielded in the direction of the chalcogen bond (due to the approach of the lone pair of the Lewis base), and strongly deshielded in the perpendicular direction. The orientation of the deshielded axis is consistent with the presence of a second σ-hole which is not participating in a chalcogen bond, showing the profound effect of electron density anisotropy on the chemical shift.
硒核磁共振(Se-NMR)用于表征有机硒药物依布硒啉衍生物的几种硫族元素键合配合物,探索一系列电子需求情况。核磁共振滴定实验支持了一种直观认识,即带有更多吸电子取代基的硫族元素键供体可形成更强的硫族元素键。当硒原子核参与硫族元素键合时,其化学位移也会向高场移动。固态核磁共振用于研究共晶体中的硫族元素键合。由于在固态中核磁共振时间尺度上分子缺乏重排,因此可利用该技术确定化学位移张量的形状。一系列共晶体显示出极大的化学位移各向异性,这表明硒原子周围存在强烈的各向异性电子密度分布。使用其中一种共晶体进行了单晶核磁共振实验,得到了化学位移张量在晶体中的绝对取向。结果表明,在硫族元素键方向上硒原子核受到强烈屏蔽(由于路易斯碱孤对电子的靠近),而在垂直方向上受到强烈去屏蔽。去屏蔽轴的取向与未参与硫族元素键合的第二个σ-空穴的存在一致,表明电子密度各向异性对化学位移有深远影响。