首页> 外文期刊>Solar Energy Materials and Solar Cells: An International Journal Devoted to Photovoltaic, Photothermal, and Photochemical Solar Energy Conversion >Optimum two-dimensional short circuit collection efficiency in thin multicrystalline silicon solar cells with optical confinement
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Optimum two-dimensional short circuit collection efficiency in thin multicrystalline silicon solar cells with optical confinement

机译:具有光学限制的薄型多晶硅太阳能电池中的最佳二维短路收集效率

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摘要

The two-dimensional short-circuit AM1.5 collection efficiency is studied in thin multicrystalline silicon solar cells with optical confinement. The collection efficiency is calculated by linking an optical analytical generation profile with the two-dimensional collection probability in pn junction solar cells. The calculations are carried out for variable grain boundary recombination velocity, cell thickness, grain width, diffusion length, and back surface recombination velocity. The role of optical confinement leading to a strong dependence of the collection efficiency on the cell thickness in very thin cells is confirmed. The optimum cell thickness for maximum collection efficiency increases in cells with low back reflection or poor back surface passivation. Also, the optimum thickness in very thin cells increases significantly with increasing the diffusion length. It is also found that the effect of grain boundary recombination is predominant if the cell thickness is larger than the diffusion length and if the diffusion length is larger than half the grain width, especially, in cells with unpassivated grain boundaries. On the other hand, back surface recombination dominates the response in cells with unpassivated back surface if the thickness is smaller than or comparable to the diffusion length. (C) 1998 Elsevier Science B.V. All rights reserved. [References: 22]
机译:研究了具有光学约束的薄型多晶硅太阳能电池的二维短路AM1.5收集效率。收集效率是通过将光学分析生成曲线与pn结太阳能电池中的二维收集概率相关联来计算的。针对可变的晶界复合速度,晶胞厚度,晶粒宽度,扩散长度和背面复合速度进行计算。在非常薄的电池中,光学限制的作用导致收集效率强烈依赖于电池厚度,这一作用已得到证实。在具有低背反射或不良背面钝化的电池中,用于最大收集效率的最佳电池厚度会增加。而且,非常薄的单元中的最佳厚度会随着扩散长度的增加而显着增加。还发现,如果晶胞厚度大于扩散长度并且扩散长度大于晶粒宽度的一半,则尤其是在具有未钝化晶界的晶胞中,晶界重组的影响最为显着。另一方面,如果厚度小于或等于扩散长度,则背面复合将主导具有未钝化背面的电池的响应。 (C)1998 Elsevier Science B.V.保留所有权利。 [参考:22]

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