首页> 外文会议>European Photovoltaic Solar Energy Conference; 20060904-08; Dresden(DE) >HIGH EFFICIENCY MONO-CRYSTALLINE SOLAR CELLS WITH SIMPLE MANUFACTURABLE TECHNOLOGY
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HIGH EFFICIENCY MONO-CRYSTALLINE SOLAR CELLS WITH SIMPLE MANUFACTURABLE TECHNOLOGY

机译:易于制造的高效单晶太阳能电池

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This paper describes the analysis and optimization of phosphorus-doped n~+ emitters for Si solar cells with screen-printed contacts to improve the uniformity of contact formation. Analysis of the simulated emitters showed that J_(oe) increases with the increase in phosphorus surface concentration. Cells fabricated on emitter having a higher surface concentration and shallower junction depth, were on an average 0.3% (absolute) higher in efficiency and 0.5 mA/cm~2 higher in J_(sc) values. Internal quantum efficiency analysis showed that the J_(sc) enhancement was due to better short wavelength response in these cells. In addition the fill factors were also slightly higher in the cells with higher surface concentration and shallower junction depth. SEM analysis showed larger (~1.5nm) and more uniformly distributed Ag crystallites on the surface of cells with emitter that had higher surface concentration. This may lead to a more tolerant contact firing process and result in a higher yield of high-efficiency cells. Furthermore, use of emitters with higher phosphorus surface concentration and shallower junction depth reduces the cell processing time appreciably leading to high throughput and cost savings in cell manufacturing. We were able to tailor the emitter profile and the firing conditions of a commercially available front silver paste to obtain good average FF's of 77.7% in conjunction with short circuit current (J_(sc)) of 34.8 mA/cm~2 and an open circuit (V_(oc)) of 619 mV and efficiency of~17% on 149 cm~2 Czochralski silicon wafers.
机译:本文介绍了用于丝网印刷接触的硅太阳能电池的磷掺杂n〜+发射极的分析和优化,以提高接触形成的均匀性。对模拟发射极的分析表明,J_(oe)随着磷表面浓度的增加而增加。在具有较高表面浓度和较浅结深度的发射极上制造的电池的效率平均提高0.3%(绝对值),而J_(sc)值平均提高0.5 mA / cm〜2。内部量子效率分析表明,J_(sc)增强是由于这些电池中更好的短波长响应所致。另外,在具有较高表面浓度和较浅结深的电池中,填充因子也略高。 SEM分析表明,具有发射极的细胞表面具有较高的表面浓度,较大(〜1.5nm)且分布较均匀的Ag微晶。这可能导致更宽容的接触放电过程,并导致高效率电池的更高产量。此外,使用具有较高磷表面浓度和较浅结深度的发射极可显着减少电池处理时间,从而在电池制造中带来高产量和节省成本。我们能够调整发射器的外形和市售的前银浆的烧制条件,在34.8 mA / cm〜2的短路电流(J_(sc))和开路的情况下获得77.7%的良好平均FF。在149 cm〜2直拉硅片上的(V_(oc))为619 mV,效率为〜17%。

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