Suthar Sonam, Mondal Kartik Chandra
Department of Chemistry, Indian Institute of Technology Madras, Chennai, India.
J Comput Chem. 2023 Oct 30;44(28):2184-2211. doi: 10.1002/jcc.27190. Epub 2023 Aug 2.
Cyclopropane ring is a very common motif in organic/bio-organic compounds. The chemical bonding of this strained ring is taught to all chemistry students. This three-membered cyclic, C ring is quite reactive which has attracted both, synthetic and theoretical chemists to rationalize/correlate its stability and bonding with its reactivity and physical properties over a century. There are a few bonding models (mainly the Bent-Bond model and Walsh model) of this C ring that are debated to date. Herein, we have carried out energy decomposition analysis coupled with natural orbital for chemical valence (EDA-NOCV) to study the two most reactive bonds of cyclopropane rings of 49 different organic compounds containing different functional groups to obtain a much deeper bonding insight toward a more general bonding model of this class of compounds. The EDA-NOCV analyses of fragment orbitals and susequent bond formation revealed that the nature of the CC bond of the cyclopropane (splitting two bonds at a time out of three CC bonds) ring is preferred to form two dative covalent CC bonds (between a singlet olefin-fragment and an excited singlet carbene-fragment with a vacant sp orbital and a filled p-orbital) for the majority (37/49) of compounds over two covalent electron sharing bonds in some (7/49) compounds (between an excited triplet olefin and triplet carbene), while a few (5/49) compounds show flexibility to adopt either the electron sharing or dative covalent bond as both are equally possible. The effects of functional groups on the nature of chemical bond in cyclopropane rings have been studied in detail. Our bonding analyses are in line with the QTAIM analyses which produce small negative values of the Laplacian, significantly positive values of bond ellipticity, and accumulation of electron densities around the ring critical point of C -rings. These corresponding QTAIM parameters of C -rings are quite different for CC single bonds of normal hydrocarbons as expected. The chemical bonding in the majority of cyclopropane rings can be very similar to those of metal-olefin systems.
环丙烷环是有机/生物有机化合物中非常常见的结构单元。所有化学专业的学生都会学习这种张力环的化学键。这个三元环,即C环,具有相当高的反应活性,在一个多世纪以来一直吸引着合成化学家和理论化学家,以合理化/关联其稳定性、化学键与反应活性及物理性质。关于这个C环,目前仍存在一些化学键模型(主要是弯键模型和沃尔什模型)的争议。在此,我们进行了能量分解分析,并结合化学价自然轨道(EDA-NOCV),研究了49种含有不同官能团的不同有机化合物中环丙烷环的两个最具反应活性的键,以获得对这类化合物更通用化学键模型更深入的化学键认识。对片段轨道的EDA-NOCV分析以及随后的键形成表明,对于大多数(37/49)化合物而言,环丙烷(一次从三个CC键中拆分出两个键)环的CC键性质更倾向于形成两个配位共价CC键(在一个单线态烯烃片段和一个具有空sp轨道和填充p轨道的激发单线态卡宾片段之间),而不是某些(7/49)化合物中的两个共价电子共享键(在一个激发三线态烯烃和三线态卡宾之间),不过有少数(5/49)化合物表现出灵活性,可以采用电子共享键或配位共价键,因为两者都同样可行。我们详细研究了官能团对环丙烷环中化学键性质的影响。我们的化学键分析与QTAIM分析结果一致,QTAIM分析得出拉普拉斯算子的小负值、键椭圆率的显著正值以及C环的环临界点周围的电子密度积累。正如预期的那样,对于正常碳氢化合物的CC单键,C环的这些相应QTAIM参数有很大不同。大多数环丙烷环中的化学键与金属 - 烯烃体系的化学键非常相似。