Adegoke Temilade Esther, Bekarevich Raman, Geaney Hugh, Belochapkine Sergey, Bangert Ursel, Ryan Kevin M
Department of Chemical Sciences and Bernal Institute, University of Limerick, Limerick, V94 T9PX Ireland.
Advanced Microscopy Laboratory, Centre for Research on Adaptive Nanostructures and Nanodevices (CRANN), Trinity College Dublin, Dublin, D02 DA31 Ireland.
ACS Nano. 2024 Apr 9;18(14):10270-10278. doi: 10.1021/acsnano.4c01060. Epub 2024 Mar 21.
Metal silicides have received significant attention due to their high process compatibility, low resistivity, and structural stability. In nanowire (NW) form, they have been widely prepared using metal diffusion into preformed Si NWs, enabling compositionally controlled high-quality metal silicide nanostructures. However, unlocking the full potential of metal silicide NWs for next-generation nanodevices requires an increased level of mechanistic understanding of this diffusion-driven transformation. Herein, using transmission electron microscopy (TEM), we investigated the defect-controlled silicide formation dynamics in one-dimensional NWs. A solution-based synthetic route was developed to form Si NWs anchored to Ni NW stems as an optimal platform for TEM studies of metal silicide formation. Multiple annealing experiments led to Ni diffusion from the Ni NW stem into the Si NW, forming a nickel silicide. We observed the dynamics of Ni propagation in straight and kinked Si NWs, with some regions of the NWs acting as Ni sinks. In NWs with high defect distribution, we obtained direct evidence of nonuniform Ni diffusion and silicide retardation. The findings of this study provide insights into metal diffusion and silicide formation in complex NW structures, which are crucial from fundamental and application perspectives.
金属硅化物因其高工艺兼容性、低电阻率和结构稳定性而受到广泛关注。以纳米线(NW)形式存在时,它们已通过将金属扩散到预制的硅纳米线中而被广泛制备,从而能够实现成分可控的高质量金属硅化物纳米结构。然而,要释放金属硅化物纳米线在下一代纳米器件中的全部潜力,需要对这种扩散驱动的转变有更高水平的机理理解。在此,我们使用透射电子显微镜(TEM)研究了一维纳米线中缺陷控制的硅化物形成动力学。开发了一种基于溶液的合成路线,以形成锚定在镍纳米线茎上的硅纳米线,作为用于金属硅化物形成的TEM研究的最佳平台。多次退火实验导致镍从镍纳米线茎扩散到硅纳米线中,形成硅化镍。我们观察了镍在直的和扭结的硅纳米线中的传播动力学,纳米线的一些区域充当镍阱。在具有高缺陷分布的纳米线中,我们获得了镍不均匀扩散和硅化物延迟的直接证据。这项研究的结果为复杂纳米线结构中的金属扩散和硅化物形成提供了见解,这从基础和应用角度来看都至关重要。