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Analysis of the behavior of multijunction solar cells under high irradiance Gaussian light profiles showing chromatic aberration with emphasis on tunnel junction performance

机译:多结太阳能电池在高辐照高斯光剖面下表现色差的行为分析,重点在于隧道结性能

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摘要

In this work, we explain the behavior of multijunction solar cells under non-uniform (spatially and in spectral content) light profiles in general and in particular when Gaussian light profiles cause a photo-generated current density, which exceeds locally the peak current density of the tunnel junction. We have analyzed the implications on the tunnel junction's limitation, that is, in the loss of efficiency due to the appearance of a dip in the I–V curve. For that, we have carried out simulations with our three-dimensional distributed model for multijunction solar cells, which contemplates a full description of the tunnel junction and also takes into account the lateral resistances in the tunnel junction. The main findings are that the current density photo-generated spreads out through the lateral resistances of the device, mainly through the tunnel junction layers and the back contact. Therefore, under non-uniform light profiles these resistances are determinant not only to avoid the tunnel junction's limitation but also for mitigating losses in the fill factor. Therefore, taking into account these lateral resistances could be the key for jointly optimizing the concentrator photovoltaic system (concentrator optics, front grid layout and semiconductor structure)
机译:在这项工作中,我们通常会解释多结太阳能电池在不均匀(空间和光谱含量)光分布下的行为,尤其是当高斯光分布导致光生电流密度超过局部峰值电流密度时。隧道交界处。我们已经分析了对隧道结局限性的影响,即由于IV曲线出现下降而导致的效率损失。为此,我们使用三维分布模型对多结太阳能电池进行了仿真,该模型考虑了隧道结的完整描述,并考虑了隧道结的横向电阻。主要发现是光产生的电流密度通过器件的侧向电阻(主要是通过隧道结层和背接触)散布开来。因此,在不均匀的光分布下,这些电阻是决定性的,不仅避免了隧道结的局限性,而且还减轻了填充因子的损失。因此,考虑到这些侧向电阻可能是共同优化聚光光伏系统(聚光光学,前栅极布局和半导体结构)的关键

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