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Highly transparent modulated surface textured front electrodes for high-efficiency multijunction thin-film silicon solar cells

机译:用于高效多结薄膜硅太阳能电池的高透明调制表面纹理化前电极

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To further increase the efficiency of multijunction thin-film silicon (TF-Si) solar cells, it is crucial for the front electrode to have a good transparency and conduction, to provide efficient light trapping for each subcell, and to ensure a suitable morphology for the growth of high-quality silicon layers. Here, we present the implementation of highly transparent modulated surface textured (MST) front electrodes as light-trapping structures in multijunction TF-Si solar cells. The MST substrates comprise a micro-textured glass, a thin layer of hydrogenated indium oxide (IOH), and a sub-micron nano-textured ZnO layer grown by low-pressure chemical vapor deposition (LPCVD ZnO). The bilayer IOH/LPCVD ZnO stack guarantees efficient light in-coupling and light trapping for the top amorphous silicon (a-Si:H) solar cell while minimizing the parasitic absorption losses. The crater-shaped micro-textured glass provides both efficient light trapping in the red and infrared wavelength range and a suitable morphology for the growth of high-quality nanocrystalline silicon (nc-Si:H) layers. Thanks to the efficient light trapping for the individual subcells and suitable morphology for the growth of high-quality silicon layers, multijunction solar cells deposited on MST substrates have a higher efficiency than those on single-textured state-of-the-art LPCVD ZnO substrates. Efficiencies of 14.8% (initial) and 12.5% (stable) have been achieved for a-Si:Hc-Si:H tandem solar cells with the MST front electrode, surpassing efficiencies obtained on state-of-the-art LPCVD ZnO, thereby highlighting the high potential of MST front electrodes for high-efficiency multijunction solar cells. Copyright (c) 2015 John Wiley & Sons, Ltd.
机译:为了进一步提高多结薄膜硅(TF-Si)太阳能电池的效率,至关重要的是使前电极具有良好的透明性和导电性,为每个子电池提供有效的光陷阱,并确保合适的形貌用于高质量硅层的增长。在这里,我们介绍了在多结TF-Si太阳能电池中将高透明调制表面纹理化(MST)前电极作为光捕获结构的实现。 MST基板包括微结构化玻璃,氢化氧化铟(IOH)薄层以及通过低压化学气相沉积(LPCVD ZnO)生长的亚微米级纳米结构化ZnO层。双层IOH / LPCVD ZnO堆栈可确保顶部非晶硅(a-Si:H)太阳能电池的有效光耦合和光捕获,同时将寄生吸收损耗降至最低。坑状微纹理玻璃既提供了在红色和红外波长范围内的有效光捕获,又提供了用于生长高质量纳米晶体硅(nc-Si:H)层的合适形态。得益于单个子电池的高效光阱捕获以及适合于高质量硅层生长的形貌,沉积在MST衬底上的多结太阳能电池的效率要高于单纹理最新LPCVD ZnO衬底上的效率。带有MST前电极的a-Si:H / nc-Si:H串联太阳能电池的初始效率为14.8%(初始)和12.5%(稳定),超过了最新LPCVD ZnO所获得的效率,从而突出了MST前电极在高效多结太阳能电池中的高潜力。版权所有(c)2015 John Wiley&Sons,Ltd.

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