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Effects of screen printing and sintering processing of front side silver grid line on the electrical performances of multi-crystalline silicon solar cells

机译:正面银栅线的丝网印刷和烧结工艺对多晶硅太阳能电池电性能的影响

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摘要

In this paper, the influence of screen-printing technology, sintering temperature, and the belt speed of sintering furnace on electrical properties of solar cells were researched. It is found that the morphology and aspect ratio of grid line are strongly influenced by printing parameters including the snap-off distance, the squeegee pressure and the squeegee speed. A number of comparative experiments showed that the electrical performance of solar cells was the best when the snap-off distance is 1200 µm, the squeegee pressure is 75 N, and the squeegee speed is 220 mm/s. Meanwhile, the surface morphology of the front electrode grid line prepared with the above optimum technology parameter is smooth and dense, and possesses good aspect ratio. To better understand the contact quality, the influence of sintering peak temperature on the electrical performance of solar cells was deeply studied. The results show that when the peak temperature was 900 °C, the series resistance (R_s) possesses the minimum value and the open circuit voltage (V_(oc)), fill factor (FF), and conversion efficiency (E_(ff)) all possess the maximum values. The effect of belt speed of sintering furnace on the electrical performance of the cells was also investigated. It is found that the electrical performance parameters were the optimal at the belt speed of 245 in/min.
机译:本文研究了丝网印刷技术,烧结温度,烧结炉的带速对太阳能电池电性能的影响。发现网格线的形态和长宽比受打印参数的影响很大,这些参数包括折页距离,刮板压力和刮板速度。大量对比实验表明,当卡扣距离为1200 µm,刮刀压力为75 N,刮刀速度为220 mm / s时,太阳能电池的电性能最佳。同时,采用上述最佳工艺参数制备的前电极网格线的表面形态光滑致密,具有良好的长宽比。为了更好地了解接触质量,深入研究了烧结峰值温度对太阳能电池电性能的影响。结果表明,当峰值温度为900°C时,串联电阻(R_s)具有最小值,并且开路电压(V_(oc)),填充因子(FF)和转换效率(E_(ff))具有最小值全部都具有最大值。还研究了烧结炉皮带速度对电池电性能的影响。发现在皮带速度为245 in / min时,电气性能参数是最佳的。

著录项

  • 来源
    《Journal of materials science》 |2017年第16期|11934-11949|共16页
  • 作者单位

    National Key Laboratory of Photoelectric Technology and Functional Materials (Culture Base), National Photoelectric Technology and Functional Materials and Application of International Science and Technology Cooperation Base, Institute of Photonics and Photon-Technology, Northwest University, Xi’an, China,College of Energy Engineering, Yulin University, Yulin, China;

    National Key Laboratory of Photoelectric Technology and Functional Materials (Culture Base), National Photoelectric Technology and Functional Materials and Application of International Science and Technology Cooperation Base, Institute of Photonics and Photon-Technology, Northwest University, Xi’an, China;

    Key Laboratory of Synthetic and Natural Functional Molecule Chemistry (Ministry of Education), College of Chemistry and Materials Science, Northwest University, Xi’an, China;

    Key Laboratory of Synthetic and Natural Functional Molecule Chemistry (Ministry of Education), College of Chemistry and Materials Science, Northwest University, Xi’an, China;

    Key Laboratory of Synthetic and Natural Functional Molecule Chemistry (Ministry of Education), College of Chemistry and Materials Science, Northwest University, Xi’an, China;

    National Key Laboratory of Photoelectric Technology and Functional Materials (Culture Base), National Photoelectric Technology and Functional Materials and Application of International Science and Technology Cooperation Base, Institute of Photonics and Photon-Technology, Northwest University, Xi’an, China;

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  • 正文语种 eng
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