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Performance analysis of rigorous coupled-wave analysis and its integration in a coupled modeling approach for optical simulation of complete heterojunction silicon solar cells

机译:严格的耦合波分析的性能分析及其在完整的异质结硅太阳能电池光学仿真的耦合建模方法中的集成

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摘要

A variety of light management structures have been introduced in solar cells to improve light harvesting and further boost their conversion efficiency. Reliable and accurate simulation tools are required to design and optimize the individual structures and complete devices. In the first part of this paper, we analyze the performance of rigorous coupled-wave analysis (RCWA) for accurate three-dimensional optical simulation of solar cells, in particular heterojunction silicon (HJ Si) solar cells. The structure of HJ Si solar cells consists of thin and thick layers, and additionally, micro- and nano-textures are also introduced to further exploit the potential of light trapping. The RCWA was tested on the front substructure of the solar cell, including the texture, thin passivation and contact layers. Inverted pyramidal textures of different sizes were included in the simulations. The simulations rapidly converge as long as the textures are small (in the (sub)micrometer range), while for larger microscale textures (feature sizes of a few micrometers), this is not the case. Small textures were optimized to decrease the reflectance, and consequently, increase the absorption in the active layers of the solar cell. Decreasing the flat parts of the texture was shown to improve performance. For simulations of structures with microtextures, and for simulations of complete HJ Si cells, we propose a coupled modeling approach (CMA), where the RCWA is coupled with raytracing and the transfer matrix method. By means of CMA and nanotexture optimization, we show the possible benefits of nanotextures at the front interface of HJ Si solar cells, demonstrating a 13.4% improvement in the short-circuit current density with respect to the flat cell and 1.4% with respect to the cell with double-sided random micropyramids. We additionally demonstrate the ability to simulate a combination of nano- and microtextures at a single interface, although the considered structure did not show an improvement over the pyramidal textures.
机译:各种光管理结构已被引入太阳能电池中以改善光收集并进一步提高其转换效率。需要可靠且准确的仿真工具来设计和优化各个结构和完整的设备。在本文的第一部分中,我们分析了严格的耦合波分析(RCWA)的性能,可对太阳能电池(尤其是异质结硅(HJ Si)太阳能电池)进行精确的三维光学模拟。 HJ Si太阳能电池的结构由薄层和厚层组成,此外,还引入了微米和纳米纹理,以进一步利用光陷阱的潜力。在太阳能电池的前下部结构上测试了RCWA,包括纹理,薄钝化层和接触层。模拟中包括了不同大小的倒金字塔形纹理。只要纹理很小(在(亚)微米范围内),模拟就会迅速收敛,而对于较大的微型纹理(特征尺寸为几微米),情况并非如此。优化了小纹理以降低反射率,因此增加了太阳能电池有源层中的吸收率。减少纹理的平坦部分可提高性能。对于具有微观纹理的结构模拟以及完整的HJ Si单元的模拟,我们提出了一种耦合建模方法(CMA),其中RCWA与射线追踪和传递矩阵方法耦合。通过CMA和纳米结构优化,我们在HJ Si太阳能电池的前界面显示了纳米结构的可能好处,表明相对于扁平电池,短路电流密度提高了13.4%,相对于扁平电池,短路电流密度提高了1.4%。单元带有双面随机微金字塔。我们还展示了在单个界面上模拟纳米和微观纹理组合的能力,尽管所考虑的结构并未显示出比金字塔形纹理更好的性能。

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