Department of Chemistry, Indian Institute of Technology Madras, Chennai, India.
J Comput Chem. 2023 Jul 15;44(19):1673-1689. doi: 10.1002/jcc.27118. Epub 2023 May 13.
Stabilizing the exotic chemical species possessing multiple bonds is often extremely challenging due to insufficient orbital overlap, especially involving one heavier element. Bulky aryl groups and/or carbene as ligand have previously stabilized the SiSi, GeGe, and BB triple bonds. Herein, theoretical calculations have been carried out to shed light on the stability and bonding of elusive silaboryne/germaboryne (Si/GeB triple bond) stabilized by donor base ligands ((cAAC)BE(Me)(L); E = Si, L = cAAC , NHC , PMe ; E = Ge, L = cAAC ). The heavier analogues (Sn, Pb) have been further studied for comparison. Additionally, the effects of bulky substituents at the Si and N atoms on the structural parameters and stability of those species have been investigated. Energy decomposition analysis coupled with natural orbital for chemical valence (EDA-NOCV; for Si) showed that cAAC/NHC ligands could stabilize the exotic BSi-Me species more efficiently than PMe ligands. The BSi partial triple bond of the corresponding species possesses a mixture of one covalent electron sharing BSi σ-bond and two dative π-bonds (B ← Si, B → Si).
稳定具有多重键的外来化学物质通常极具挑战性,因为轨道重叠不足,特别是涉及到一个较重的元素。庞大的芳基基团和/或卡宾作为配体以前稳定了 SiSi、GeGe 和 BB 三键。在此,进行了理论计算,以阐明由给体碱基配体稳定的难以捉摸的硅甲硼烷/锗甲硼烷(Si/GeB 三键)的稳定性和键合性质((cAAC)BE(Me)(L);E = Si,L = cAAC,NHC,PMe;E = Ge,L = cAAC)。进一步研究了较重的类似物(Sn、Pb)进行比较。此外,还研究了 Si 和 N 原子上的大取代基对这些物质结构参数和稳定性的影响。能量分解分析与自然轨道化学价(EDA-NOCV;对于 Si)相结合表明,cAAC/NHC 配体可以比 PMe 配体更有效地稳定外来的 BSi-Me 物质。相应物种的 BSi 部分三键具有一个共价电子共享 BSi σ 键和两个给予π键(B ← Si,B → Si)的混合物。