Boron activation in silicon thin films grown by PECVD under epitaxial and microcrystalline conditions

材料科学 外延 退火(玻璃) 兴奋剂 电导率 基质(水族馆) 等离子体增强化学气相沉积 电子迁移率 微晶 分析化学(期刊) 化学工程 光电子学 纳米技术 结晶学 化学 复合材料 物理化学 海洋学 有机化学 地质学 图层(电子) 色谱法 工程类
作者
Antonio J. Olivares,A. O. Zamchiy,Van Son Nguyen,Pere Roca i Cabarrocas
出处
期刊:Applied surface science advances [Elsevier BV]
卷期号:18: 100508-100508
标识
DOI:10.1016/j.apsadv.2023.100508
摘要

Boron doping level and boron activation in silicon thin films grown by PECVD under epitaxial (p+ epi‑Si) and microcrystalline (p+ µc-Si) conditions have been investigated as functions of the substrate material and annealing in the range of 200°C – 300°C. Hall effect measurements show that in the as-deposited state, the conductivity is mainly governed by the carrier concentration, while the hole mobility is controlled by the crystalline quality. SIMS measurements reveal that dark conductivity is not directly proportional to the boron doping level, nor to the presence of B-H complexes, suggesting that carbon contamination and the formation of B-O complexes could play an important role in the electrical properties of the material. Annealing in air resulted in an increase in the dark conductivity for all samples. However, the increase was much higher (up to two orders of magnitude) for the samples deposited on silicon-on-insulator (SOI) substrates which have better crystalline quality and displayed the highest increase in hole carrier concentration, related to boron activation. Thus, the substrate material influences both the crystalline quality and the boron incorporation in the p-type material. At high boron incorporation, the mobility limitations are likely to be due to carrier concentration rather than to the crystalline quality, indicating that p+ µc-Si conditions allow a conductivity advantage over p+ epi‑Si conditions due to a higher doping level, which makes them suitable as hole-selective contacts in solar cells.
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