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Improvement of Performance of Amorphous Silicon-Germanium Thin-Film Solar Modules With Large Width P2 Process Technology

机译:利用大宽度P2工艺技术改善非晶硅锗薄膜太阳能电池的性能

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摘要

In this paper, the laser power density is varied to increase the P2 laser spot size to investigate its effects on the performance of hydrogenated amorphous silicon-germanium (a-SiGe:H) thin-film solar modules. A larger P2 line spot size is expected to lower the series resistance of the modules, due to the increased contact area between the front and rear electrodes . However, increasing the laser power density faces several problems , which are: 1) damage of the SnO front electrode if the used power density exceeds the ablation threshold; 2) reduced quality of a-SiGe:H films; and 3) low spot size increasing rate at high power densities. The first can further lead to the presence of silicon oxide formation at the bottom of the P2 scribes. This paper demonstrates another method to obtain a larger spot size. A multiple P2 line scribing process has been performed to increase the spot size without deteriorating the film’s quality and the module performance. Finally, a 6-P2 linewidth of about 160 m leads to a balance between the gain in fill factor and the loss in photocurrent. The optimal module conversion efficiency of 8.82%, which is 8.7% higher than that using a single P2 line process, can be obtained.
机译:本文通过改变激光功率密度来增加P2激光光斑的大小,以研究其对氢化非晶硅锗(a-SiGe:H)薄膜太阳能电池组件性能的影响。由于前电极和后电极之间的接触面积增加,预计较大的P2线点尺寸会降低模块的串联电阻。然而,增加激光功率密度面临几个问题,这些问题是:1)如果使用的功率密度超过烧蚀阈值,则损坏SnO前电极。 2)降低a-SiGe:H薄膜的质量; 3)在高功率密度下光斑尺寸增加率低。第一种可以进一步导致在P2划痕的底部形成氧化硅。本文演示了另一种获得较大光斑尺寸的方法。已经执行了多个P2线划线过程,以增加光斑尺寸,而不会降低胶片的质量和模块性能。最后,约160 m的6-P2线宽导致填充系数的增加和光电流的损失之间的平衡。可以获得8.82%的最佳模块转换效率,这比使用单个P2生产线工艺的最佳转换效率高8.7%。

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