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Breakdown of the efficiency gap to 29% based on experimental input data and modeling

机译:根据实验输入数据和建模,将效率差距降低到29%

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We demonstrate a procedure for quantifying efficiency gains that treats resistive, recombinative, and optical losses on an equal footing. For this, we apply our conductive boundary model as implemented in the Quokka cell simulator. The generation profile is calculated with a novel analytical light-trapping model. This model parameterizes the measured reflection spectra and is capable of turning the experimental case gradually into an ideal Lambertian scheme. Simulated and measured short-circuit current densities agree for our 21.2%-efficient screen-printed passivated emitter and rear cell and for our 23.4%-efficient ion-implanted laser-processed interdigitated back-contacted cell. For the loss analysis of these two cells, we set all experimentally accessible control parameters (e.g., saturation current densities, sheet resistances, and carrier lifetimes) one at a time to ideal values. The efficiency gap to the ultimate limit of 29% is thereby fully explained in terms of both individual improvements and their respective synergistic effects. This approach allows comparing loss structures of different types of solar cells, for example, passivated emitter and rear cell and interdigitated back-contacted cells. Copyright (c) 2015 John Wiley & Sons, Ltd.
机译:我们展示了量化效率增益的一种方法,该方法可以在相同的基础上处理电阻性,重组性和光学损耗。为此,我们应用了Quokka细胞模拟器中实现的导电边界模型。用新颖的分析光陷获模型来计算发电曲线。该模型参数化了测得的反射光谱,并且能够将实验情况逐渐转变为理想的Lambertian方案。对于我们的21.2%的丝网印刷钝化发射极和后电池,以及我们对离子注入的23.4%的离子注入激光处理的叉指背接触式电池,仿真和测量的短路电流密度是一致的。对于这两个电池的损耗分析,我们将所有实验上可访问的控制参数(例如,饱和电流密度,薄层电阻和载流子寿命)一次设置为理想值。因此,就单个改进及其各自的协同效应而言,可以充分说明达到29%极限极限的效率差距。这种方法允许比较不同类型的太阳能电池(例如,钝化的发射极和背面电池以及叉指式背接触式电池)的损耗结构。版权所有(c)2015 John Wiley&Sons,Ltd.

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