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Understanding the Influence of Busbars in Large-Area IBC Solar Cells by Distributed SPICE Simulations

机译:通过分布式SPICE仿真了解母线在大面积IBC太阳能电池中的影响

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In this paper, we model a large-area high-efficiency interdigitated back-contact (IBC) solar cell by means of a distributed electrical network. The simulation tool allows accounting for the distributed resistive effects in diffusions and metallization. The model also considers the electrical shading effect and resistive losses due to both back-surface field (BSF) and emitter busbars. A calibrated model is used to investigate the case of a large-area (15.6 × 15.6 cm) IBC cell, in which we investigate the influence of key busbar parameters: number of busbars, busbar width, soldering pitch (for module connection), and metal sheet resistance. The predictive simulations allow finding out the optimum number of busbars, arising from a tradeoff between the electrical shading effect due to the BSF busbars and resistive losses due to the emitter busbars and the fingers. Moreover, we show how the distance between soldering points on the metal busbars influences the choice of the busbar width. We found out that if an adequate number (>7) of soldering points is adopted, the busbar width should be kept lower than 0.5 mm. On the other hand, the adoption of a thick Cu-plating (15 μm) leads to an increase of efficiency of with respect to the case of sputtered Al metal (3 μm thick).
机译:在本文中,我们通过分布式电网对大面积高效指叉背接触式(IBC)太阳能电池进行建模。该仿真工具可以解决扩散和金属化过程中分布的电阻效应。该模型还考虑了由于背表面场(BSF)和发射极母线造成的电气遮蔽效应和电阻损耗。使用校准的模型调查大面积(15.6 x 15.6 cm)IBC电池的情况,在此情况下我们调查关键母线参数的影响:母线数,母线宽度,焊接间距(用于模块连接)以及金属薄层电阻。预测性仿真允许找出最佳的母线数量,这是由于BSF母线引起的电气遮蔽效应与发射极母线和指状部造成的电阻损耗之间的折衷。此外,我们展示了金属母线上焊接点之间的距离如何影响母线宽度的选择。我们发现,如果采用足够数量的(> 7)焊接点,则母线宽度应保持小于0.5毫米。另一方面,采用厚的Cu镀层(15μm)相对于溅射的Al金属(3μm厚)会提高效率。

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