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A new approach: Low cost masking material and efficient copper metallization for higher efficiency silicon solar cells

机译:一种新方法:低成本掩膜材料和高效铜金属化技术,可实现更高效率的硅太阳能电池

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A new approach based on the development of a new low-cost masking material and a new technique for performing fast wet processes (i.e. chemical etching and electroplating processes) are presented, back side silver removal is proposed allowing in combination with a multi-bus bar module assembly technique to boost standard silicon solar cells towards higher efficiencies at low cost. The new masking material based on a low-cost wax is able to withstand wet hot chemical treatment up to 100 °C. The developed wax composition that costs 10 times less than photoresist can be taken into consideration as an industrial masking process for solar cell for the front copper metallization process. However, the industrial applicability of the copper plating processes foresees several issues concerning the cell throughput for the plating technique at industrial level, which is directly connected to the plating speed. In this work, it is shown how using the new concept of coalescent dynamic liquid drop/meniscus is possible to plate 35 μm thick copper fingers on wax masked solar cell with a deposition speed as high as 1 μm/s. Combining the proposed technique with the back side selective plating, a silver-free silicon solar cell fabrication process is developed allowing to reach efficiencies higher than 18 % for monocrystalline silicon solar cell.
机译:提出了一种基于新的低成本掩膜材料开发的新方法和一种用于执行快速湿法工艺(即化学蚀刻和电镀工艺)的新技术,并提出了可以去除背面银的技术,从而可以与多汇流条结合使用模块组装技术以低成本将标准的硅太阳能电池提升到更高的效率。基于低成本蜡的新型遮盖材料能够承受高达100°C的湿热化学处理。成本比光致抗蚀剂低10倍的已开发蜡组合物可被视为用于正面铜金属化工艺的太阳能电池的工业掩膜工艺。然而,铜镀覆工艺的工业适用性预见了与工业水平上的镀覆技术的电池产量有关的几个问题,其直接关系到镀覆速度。在这项工作中,展示了如何使用聚结动态液滴/弯液面的新概念在沉积速度高达1μm/ s的蜡掩膜太阳能电池上镀覆35μm厚的铜指。将提出的技术与背面选择性电镀相结合,开发了一种无银硅太阳能电池制造工艺,该工艺可使单晶硅太阳能电池的效率达到18%以上。

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