首页> 外文期刊>Journal of Semiconductors >Collaborative R&D between multicrystalline silicon ingots and battery efficiency improvement—effect of shadow area in multicrystalline silicon ingots on cell efficiency
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Collaborative R&D between multicrystalline silicon ingots and battery efficiency improvement—effect of shadow area in multicrystalline silicon ingots on cell efficiency

机译:多晶硅晶锭与电池效率改善 - 多晶硅硅锭纤维晶锭电池效应的协作研发

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摘要

We characterized strip-like shadows in cast multicrystalline silicon (mc-Si) ingots. Blocks and wafers were analyzed using scanning infrared microscopy, photoluminescence spectroscopy, laser scanning confocal microscopy, field-emission scanning electron microscopy, X-ray energy-dispersive spectrometry, and microwave photoconductivity decay technique. The effect on solar cell performance is discussed. The results show that the non-microcrystalline shadow region in Si ingots consists of precipitates of Fe, O, and C. The size of these Fe–O–C precipitates found at the shadow region is ~25 μm. Fe–O–C impurities can slightly reduce the minority carrier lifetime of the wafers while severely decrease in shunt resistance, leading to the increase in reverse current of the solar cells and degradation in cell efficiency.
机译:我们在铸造多晶硅硅(MC-Si)锭中表征了类似的阴影。 使用扫描红外显微镜,光致发光光谱,激光扫描共聚焦显微镜,现场排放扫描电子显微镜,X射线能量分散光谱和微波光电导衰减技术进行分析块和晶片。 讨论了对太阳能电池性能的影响。 结果表明,Si锭中的非微晶阴影区域由Fe,O和C的沉淀物组成。在阴影区域发现的这些Fe-O-C沉淀的大小为约25μm。 Fe-O-C杂质可以略微减少晶片的少数载体寿命,同时严重降低分流抗性,导致太阳能电池的反向电流增加和细胞效率的降解。

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