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Ab initio surface reaction energetics of SiH4 and Si2H6 on Si(001)-2x2

机译:Si(001)-2x2上SiH4和Si2H6的从头开始表面反应能

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First-principles pseudopotential calculations, within a simple dynamically constrained scheme, have been performed to investigate the reaction of 0.25 ML coverage of SiH4 and Si2H6 with the Si(001)-(2 X 2) surface. The silane molecule (SiH4) is adsorbed on to the surface at a number of different sites (on dimer, interrow, or intrarow) with varying barrier heights. Two distinct structures, which are similar in energy, arise from the initial dissociative reaction SiH4 -> SiH3(silyl) + H, where the dissociated species are adsorbed either on the same dimer components or on adjacent dimer components. Several further decays of silyl from SiH4 are presented in two separate regimes of high and low ambient hydrogen coverages. The decomposition of silyl can form two different bridging structures: an on top or an intrarow bridging structure in both of the two hydrogen coverage regimes. The disilane molecule (Si2H6) is also adsorbed upon this surface with varying energy barriers, resulting in a dissociation reaction where two SiH3 species are adsorbed on one dimer or in an adjacent dimer configuration. Plausible energy reaction paths for the above models are presented. The stability of the SiH2 species is also discussed. (c) 2005 American Institute of Physics.
机译:在一个简单的动态约束方案内,已经进行了第一性原理的伪势计算,以研究0.25 ML覆盖的SiH4和Si2H6与Si(001)-(2 X 2)表面的反应。硅烷分子(SiH4)在许多不同位置(在二聚体,行间或行内)以不同的势垒高度吸附在表面上。最初的离解反应SiH4→SiH3(甲硅烷基)+ H产生了两个能量相似的不同结构,其中离解的物质吸附在相同的二聚体组分上或相邻的二聚体组分上。在高和低的环境氢覆盖率的两个单独的方案中,SiH4产生的甲硅烷基进一步降解。甲硅烷基的分解可以形成两个不同的桥联结构:在两个氢覆盖范围中的两个上都在顶部或在行内桥联结构。乙硅烷分子(Si2H6)也以变化的能垒被吸附在该表面上,从而导致离解反应,其中两种SiH3物质被吸附在一个二聚体或相邻的二聚体构型上。提出了上述模型的合理的能量反应路径。还讨论了SiH2物种的稳定性。 (c)2005年美国物理研究所。

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