Ishida S, Iwamoto T, Kabuto C, Kira M
Department of Chemistry, Graduate School of Science, Tohoku University, Aoba-ku, Sendai 980-8578, Japan.
Nature. 2003 Feb 13;421(6924):725-7. doi: 10.1038/nature01380.
Carbon chemistry exhibits a rich variety in bonding patterns, with homo- or heteronuclear multiple bonds involving sp-hybridized carbon atoms as found in molecules such as acetylenes, nitriles, allenes and carbon dioxide. Carbon's heavier homologues in group 14 of the periodic table--including silicon, germanium and tin--were long thought incapable of forming multiple bonds because of the less effective p(pi)-p(pi) orbital overlap involved in the multiple bonds. However, bulky substituents can protect unsaturated bonds and stabilize compounds with formally sp-hybridized heavy group-14 atoms: stable germanium, tin and lead analogues of acetylene derivatives and a marginally stable tristannaallene have now been reported. However, no stable silicon compounds with formal sp-silicon atoms have been isolated. Evidence for the existence of a persistent disilaacetylene and trapping of transient 2-silaallenes and other X = Si = X' type compounds (X, X' = O, CR2, NR, and so on) are also known, but stable silicon compounds with formally sp-hybridized silicon atoms have not yet been isolated. Here we report the synthesis of a thermally stable, crystalline trisilaallene derivative containing a formally sp-hybridized silicon atom. We find that, in contrast to linear carbon allenes, the trisilaallene is significantly bent. The central silicon in the molecule is dynamically disordered, which we ascribe to ready rotation of the central silicon atom around the molecular axis.
碳化学在键合模式上呈现出丰富的多样性,在乙炔、腈、丙二烯和二氧化碳等分子中存在涉及sp杂化碳原子的同核或异核多重键。长期以来,人们一直认为元素周期表第14族中碳的较重同系物——包括硅、锗和锡——由于多重键中p(π)-p(π)轨道重叠效果较差而无法形成多重键。然而,庞大的取代基可以保护不饱和键,并使具有形式上sp杂化的第14族重原子的化合物稳定:现已报道了乙炔衍生物稳定的锗、锡和铅类似物以及一种稳定性稍差的三锡丙二烯。然而,尚未分离出具有形式上sp杂化硅原子的稳定硅化合物。虽然也已知存在持久性二硅乙炔的证据以及捕获瞬态2-硅丙二烯和其他X = Si = X'型化合物(X、X' = O、CR2、NR等),但尚未分离出具有形式上sp杂化硅原子的稳定硅化合物。在此,我们报道了一种含有形式上sp杂化硅原子的热稳定结晶三硅丙二烯衍生物的合成。我们发现,与线性碳丙二烯不同,三硅丙二烯明显弯曲。分子中的中心硅存在动态无序,我们将其归因于中心硅原子围绕分子轴的快速旋转。