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Perovskite/c-Si tandem solar cell with inverted nanopyramids: realizing high efficiency by controllable light trapping

机译:具有倒置纳米金字塔的钙钛矿/ c-Si串联太阳能电池:通过可控的光阱实现高效率

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摘要

Perovskite/c-Si tandem solar cells (TSCs) have become a promising candidate in recent years for achieving efficiency over 30%. Although general analysis has shown very high upper limits for such TSCs, it remains largely unclear what specific optical structures could best approach these limits. Here we propose the combination of perovskite/c-Si tandem structure with inverted nanopyramid morphology as a practical way of achieving efficiency above 31% based on realistic solar cell parameters. By full-field simulation, we have shown that an ultra-low surface reflectance can be achieved by tuning the pyramid geometry within the range of experimental feasibility. More importantly, we have demonstrated that the index-guided modes can be excited within the top cell layer by introducing a TCO interlayer that prevents coupling of guided light energy into the bottom cell. This light trapping scheme has shown superior performance over the Bragg stack intermediate reflector utilized in previous micropyramid-based TSCs. Finally, by controlling the coupling between the top and bottom cell through the thickness of the interlayer, current generation within the tandem can be optimized for both two- and four-terminal configurations, yielding efficiencies of 31.9% and 32.0%, respectively. These results have provided useful guidelines for the fabrication of perovskite/c-Si TSCs.
机译:钙钛矿/ c-Si串联太阳能电池(TSC)近年来已成为有望实现30%以上效率的候选者。尽管一般分析显示此类TSC的上限非常高,但仍不清楚哪种特定的光学结构可以最好地接近这些上限。在这里,我们提出将钙钛矿/ c-Si串联结构与倒置的纳米金字塔形态相结合,作为基于实际太阳能电池参数获得高于31%效率的实用方法。通过全场模拟,我们已经表明,通过在实验可行性范围内调整金字塔的几何形状,可以实现超低表面反射率。更重要的是,我们已经证明,可以通过引入防止引导光能量耦合到底部单元格的TCO中间层,在顶部单元格层内激发折射率引导模式。与以前的基于微金字塔的TSC中使用的Bragg叠层中间反射器相比,这种光捕获方案已显示出卓越的性能。最后,通过控制中间层厚度在顶部和底部电池之间的耦合,可以针对两个和四个端子配置优化串联中的电流产生,分别产生31.9%和32.0%的效率。这些结果为钙钛矿/ c-Si TSC的制备提供了有用的指导。

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