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Analyses of the Evolution of Iron-Silicide Precipitates in Multicrystalline Silicon During Solar Cell Processing

机译:太阳能电池加工过程中多晶硅中硅化铁沉淀物演变的分析

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We simulate the precipitation of iron during the multicrystalline ingot crystallization process and the redistribution of iron during subsequent phosphorus diffusion gettering with a 2-D model. We compare the simulated size distribution of the precipitates with the X-ray fluorescence microscopy measurements of iron precipitates along a grain boundary. We find that the simulated and measured densities of precipitates larger than the experimental detection limit are in good agreement after the crystallization process. Additionally, we demonstrate that the measured decrease of the line density and the increase of the mean size of the iron precipitates after phosphorus diffusion gettering can be reproduced with the simulations. The size and spatial distribution of iron precipitates affect the kinetics of iron redistribution during the solar cell process and, ultimately, the recombination activity of the precipitated iron. Variations of the cooling rate after solidification and short temperature peaks before phosphorus diffusion strongly influence the precipitate size distribution. The lowest overall density of iron precipitates after phosphorus diffusion is obtained in the simulations with a temperature peak before phosphorus diffusion, followed by moderate cooling rates.
机译:我们使用二维模型模拟了多晶锭结晶过程中铁的沉淀以及随后的磷扩散吸杂过程中铁的重新分布。我们将沉淀物的模拟尺寸分布与沿晶界的铁沉淀物的X射线荧光显微镜测量结果进行了比较。我们发现,在结晶过程之后,大于实验检测极限的沉淀物的模拟和测量密度是一致的。此外,我们证明,通过磷扩散吸杂后,所测得的线密度的降低和铁沉淀物平均尺寸的增加可以通过模拟进行再现。铁沉淀物的大小和空间分布会影响太阳能电池过程中铁的重新分布动力学,并最终影响沉淀的铁的重组活性。凝固后冷却速度的变化和磷扩散前的短温度峰的变化强烈影响沉淀物的尺寸分布。在模拟中获得了磷扩散后铁沉淀物的最低总密度,并且磷扩散之前有一个温度峰值,随后是中等冷却速率。

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