Firing stability of phosphorus-doped polysilicon passivating contacts: Factors affecting the degradation behavior

钝化 材料科学 兴奋剂 结晶度 扩散 电介质 沉积(地质) 降级(电信) 化学工程 分析化学(期刊) 图层(电子) 光电子学 矿物学 复合材料 化学 冶金 电子工程 古生物学 工程类 物理 热力学 生物 色谱法 沉积物
作者
Di Kang,Hang Cheong Sio,Di Yan,Josua Stückelberger,Xinyu Zhang,Daniel Macdonald
出处
期刊:Solar Energy Materials and Solar Cells [Elsevier BV]
卷期号:234: 111407-111407 被引量:24
标识
DOI:10.1016/j.solmat.2021.111407
摘要

We investigate the impact of firing treatments on n-type silicon samples passivated by ex-situ phosphorus-doped polysilicon (poly-Si)/SiOx structures, and identify factors affecting the firing response. Our samples show stable surface passivation upon firing at temperatures from 600 °C to 750 °C but exhibit a substantial increase in the recombination current density parameter J0 when the peak firing temperature reaches 800 °C. The extent of degradation is found to also be affected by various processing parameters, such as the means of oxide growth, the poly-Si deposition conditions, and the subsequent phosphorus diffusion. Particularly, the degradation extent appears to increase with poly-Si deposition temperature, possibly associated with changes in the crystal structure. Moreover, phosphorus diffusions performed at a lower temperature leads to stronger firing impact, which could be attributed to the lighter doping concentration in the poly-Si film. In addition, dielectric coatings show the most obvious influence on the firing behavior. Samples fired without the presence of dielectric capping layers suffered the most pronounced degradations in J0, whereas samples coated with SiNx/AlOx stacks or SiNx single layer with high refractive index above 2 exhibit minimum firing impact. It is speculated that hydrogen diffusion is responsible for the changes in surface passivation quality of the poly-Si/SiOx passivating contacts. The hypothesis explains the stronger firing impact on samples with lighter doping and lower crystallinity, which determines the diffusion of hydrogen upon firing and hence the amount of hydrogen present in the poly-Si/SiOx structure, and especially at the oxide interface.
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