Yang Zhenghai, Sun Bing-Jian, He Chao, Goettl Shane, Lin Yu-Ting, Chang Agnes H H, Kaiser Ralf I
Department of Chemistry, University of Hawai'i at Manoa, Honolulu, Hawaii 96822, United States.
Department of Chemistry, National Dong Hwa University, Shoufeng, Hualien 974, Taiwan.
J Phys Chem A. 2021 Apr 1;125(12):2472-2479. doi: 10.1021/acs.jpca.0c11538. Epub 2021 Mar 18.
Small silicon hydrides have attracted extensive interest because of their role in the chemical evolution of circumstellar envelopes of evolved carbon stars and applications in surface growth processes and as transients in semiconductor manufacturing. Combined with electronic structure calculations, we demonstrate that monobridged silylidynesilylenes [(Si(μ-D)SiH, Si(μ-H)SiHD, Si(μ-H)SiH] and silylsilylidyne [HSiSi, HDSiSi], which are nearly isoenergetic, can be prepared via molecular hydrogen loss channels in the crossed molecular beam study of the reaction of D1-silylidyne (SiD; XΠ) with silane (SiH; XA) in a crossed molecular beams machine. Compared to the dynamics of the isovalent methylidyne (CH) - methane (CH) system, our study delivers a unique view at the intriguing isomerization processes and reaction dynamics of dinuclear silicon hydride transients, thus contributing to our knowledge on the chemical bonding of silicon hydrides at the molecular level.
小硅氢化物因其在演化碳星的星际包层化学演化中的作用、在表面生长过程中的应用以及在半导体制造中作为瞬态物质而引起了广泛关注。结合电子结构计算,我们证明了在交叉分子束机器中对D1-硅炔(SiD;XΠ)与硅烷(SiH;XA)反应进行交叉分子束研究时,通过分子氢损失通道可以制备出能量几乎相等的单桥连硅炔基硅烯([(Si(μ-D)SiH, Si(μ-H)SiHD, Si(μ-H)SiH])和硅烷基硅炔([HSiSi, HDSiSi])。与等价的亚甲基(CH)-甲烷(CH)体系的动力学相比,我们的研究为双核硅氢化物瞬态物质有趣的异构化过程和反应动力学提供了独特的视角,从而在分子水平上增进了我们对硅氢化物化学键的认识。