Silver-induced layer exchange and crystallization of a-Si films investigated using in situ scanning transmission electron microscopy

退火(玻璃) 透射电子显微镜 材料科学 结晶 扫描电子显微镜 微晶 暗场显微术 扫描透射电子显微镜 分析化学(期刊) 结晶学 化学工程 纳米技术 显微镜 光学 光电子学 化学 复合材料 冶金 物理 色谱法 工程类
作者
Surbhi Yadav,Balaji Birajdar,Simon M. Kraschewski,Benjamin Apeleo Zubiri,T. Antesberger,M. Stutzmann,Erdmann Spiecker
出处
期刊:Journal of Applied Physics [American Institute of Physics]
卷期号:136 (8)
标识
DOI:10.1063/5.0218143
摘要

Ag-induced crystallization and layer exchange (AgILE) in a stack of amorphous Si/Ag/quartz substrate has been investigated using optical microscopy, scanning electron microscopy, transmission electron microscopy (TEM), scanning TEM-high angle annular dark field (STEM-HAADF) imaging, and electron tomography, covering length scales from a few tens of micrometers to a few tens of nanometers. The size of Ag grains in the underlying as-deposited Ag film varied from ∼10 to 500 nm. The following processes could be discerned using in situ heating of plan-view samples at 500 °C in STEM: (i) AgILE propagation preferentially along regions of small Ag grains, (ii) formation of pushed-up Ag in the vicinity of AgILE reaction cells, (iii) migration and agglomeration of pushed-up Ag on small and large Ag grains, which tend to inhibit AgILE and promote dendricity, and (iv) dispersion of pushed-up Ag, which tend to reduce dendricity. The resulting dendricity was largely confined to the peripheral regions of the impinging reaction cells and decreased with annealing time. In contrast, dendricity due to AgILE and crystallization at 550 °C is stable and extends right from the center to the periphery of the reaction cells. The microscopic mechanism of AgILE and, in particular, the effect of annealing temperature is investigated. The results are discussed in the light of existing literature and compared with Al-induced layer exchange. Annealing at temperature equal to or slightly less than 500 °C is found to be necessary in the case of AgILE to avoid dendricity and to obtain a continuous Si layer with large Si grains.
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