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Diffusion-based model of local Al back surface field formation for industrial passivated emitter and rear cell solar cells

机译:基于扩散的工业钝化发射极和后电池太阳能电池局部Al背表面场形成模型

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In this work, the back surface field (BSF) formation of locally alloyed Al-paste contacts employed in recent industrial passivated emitter and rear cell solar cell designs is discussed. A predictive model for resulting local BSF thickness and doping profile is proposed that is based on the time-dependent Si distribution in the molten Al paste during the firing step. Diffusion of Si in liquid Al away from the contact points is identified as the main differentiator to a full-area Al-BSF; therefore, a diffusion-based solution to the involved differential equation is pursued. Data on the Si distribution in the Al and the resulting BSF structures are experimentally obtained by firing samples with different metal contact geometries, peak temperature times and pastes as well as by investigating them by means of scanning electron microscopy and energy dispersive X-ray spectroscopy. The Si diffusivity in the Al paste is then calculated from these results. It is found that the diffusivity is strongly dependent on the paste composition. Furthermore, the local BSF doping profiles and thicknesses resulting from different contact geometries and paste parameters are calculated from the Si concentration at the contact sites, the diffusivity and solubility data. These profiles are then used in a finite element device simulator to evaluate their performance on solar cell level. With this approach, a beneficial paste composition for any given rear contact geometry can be determined. Two line widths are investigated, and the effects of the different paste properties are discussed in the light of the solar cell results obtained by simulation. Copyright (c) 2013 John Wiley & Sons, Ltd.
机译:在这项工作中,讨论了在最近的工业钝化发射极和后电池太阳能电池设计中采用的局部合金化Al糊状触点的背面场(BSF)形成。提出了一种用于预测局部BSF厚度和掺杂分布的预测模型,该模型基于焙烧步骤中熔融Al浆料中Si随时间的分布。 Si在液态Al中远离接触点的扩散被认为是与全面积Al-BSF的主要区别;因此,对相关的微分方程进行了基于扩散的解。通过焙烧具有不同金属接触几何形状,峰值温度时间和焊膏的样品,并通过扫描电子显微镜和能量色散X射线光谱法进行研究,可以通过实验获得有关Al和所得BSF结构中Si分布的数据。然后根据这些结果计算出铝浆中的硅扩散率。发现扩散率强烈地取决于糊剂的组成。此外,根据接触部位的硅浓度,扩散系数和溶解度数据,可以计算出不同接触几何形状和焊膏参数所导致的局部BSF掺杂分布和厚度。然后,将这些配置文件用于有限元设备模拟器中,以评估其在太阳能电池级别上的性能。通过这种方法,可以确定对于任何给定的后接触几何形状的有益的糊剂成分。研究了两个线宽,并根据通过仿真获得的太阳能电池结果,讨论了不同浆料特性的影响。版权所有(c)2013 John Wiley&Sons,Ltd.

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