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Optimizing the Solar Cell Front Side Metallization and the Cell Interconnection for High Module Power Output

机译:优化太阳能电池正面金属化和电池互连以实现高模块功率输出

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摘要

Improving the light trapping in a module results in an increase in the generated current. Consequently, an optimization of the front grid metallization of the cell is required for the best trade-off between series resistance, shading, and recombination losses. For this purpose, we combine ray tracing and electrical solar cell and module calculations that explicitly account for cell and module interactions. Our model bases on experimentally verified input parameters: We determine the electrical and optical properties of the front metal fingers of passivated emitter and rear cells (PERC). We show that the effective optical width of the front metal fingers in the module is significantly reduced by 54%. The optimized simulated module has 120 half-size PERC with 20.2% cell efficiency and has an output power of 295.2 W. This is achieved with an increased number of 120 front metal fingers per cell, four white-colored cell interconnection ribbons (CIR), and an increased cell spacing. Applying these optimized design changes to an experimental module we measure a module power output of 294.8 W and a cell-to-module (CTM) factor of 1.02. Measured and simulated power agree and the deviations in Voc, Isc and FF are less than 0.91%rel. We perform a module power gain analysis for the fabricated module and simulate a potential maximum module power of 374.1 W when including further improvements.
机译:改善模块中的光捕获会导致生成电流的增加。因此,需要对电池的前栅极金属化进行优化,以在串联电阻,阴影和复合损耗之间取得最佳平衡。为此,我们将射线追踪与太阳能电池和模块的计算结合起来,从而明确考虑了电池与模块之间的相互作用。我们的模型基于经过实验验证的输入参数:我们确定钝化发射极和后电池(PERC)的前金属指的电和光学特性。我们表明,模块中前金属指的有效光学宽度显着降低了54%。经过优化的仿真模块具有120个半尺寸PERC,具有20.2%的电池效率,并具有295.2 W的输出功率。这可以通过增加每个电池120个前金属指,四个白色电池互连带(CIR)来实现。并增加了单元间距。将这些优化的设计更改应用于实验模块,我们测量的模块功率输出为294.8 W,单元对模块(CTM)因子为1.02。实测功率与模拟功率一致,Voc,Isc和F​​F的偏差小于0.91%rel。我们对制造的模块进行模块功率增益分析,并在进行进一步改进时模拟了潜在的最大模块功率374.1W。

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