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Periodic Upright Nanopyramids for Light Management Applications in Ultrathin Crystalline Silicon Solar Cells

机译:周期性立式纳米金字塔,用于超薄晶体硅太阳能电池的光管理应用

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Motivated by the primary benefit of reduced material cost, the thickness of crystalline silicon solar cells has been continuously reduced. Laboratory and industrial studies have explored ultrathin crystalline silicon solar cells below 50 μm with ambitious endeavors toward thicknesses of only a few micrometers. Ultrathin crystalline silicon solar cells require compatible small-scale surface textures to enhance the optical absorption. For this purpose, a novel submicron periodic nanostructure—periodic upright nanopyramids (PuNPs)—is fabricated by an integrated process of laser interference lithography and anisotropic etching of silicon in an alkaline solution. By simulation and measurements, we demonstrate that PuNPs are able to reduce front surface reflectance more effectively than conventional micron-scale pyramid textures and previously investigated periodic inverted nanopyramids (PiNPs). With a silicon nitride antireflection coating, we predict that PuNPs reduce the front surface reflectance to below 1% at an angle of incidence of 8°, which is comparable to black silicon. The superior antireflective property of PuNPs contributes to an absorbed photocurrent density of 40.8 mA/cm2 for a 40 μ m silicon absorber layer, which is 0.7 mA/cm2 higher than PiNPs, 0.8 mA/cm2 higher than inverted pyramids and 1 mA/cm2 higher than upright pyramids.
机译:出于降低材料成本的主要好处,晶体硅太阳能电池的厚度一直在不断减小。实验室和工业研究已经探索了50μm以下的超薄晶体硅太阳能电池,并致力于仅几微米的厚度。超薄晶体硅太阳能电池需要兼容的小尺寸表面纹理以增强光吸收。为此,通过激光干涉光刻和在碱性溶液中硅的各向异性刻蚀的集成工艺,制造了一种新型的亚微米周期性纳米结构-周期性的直立式纳米金字塔(PuNP)。通过仿真和测量,我们证明PuNPs能够比传统的微米级金字塔纹理和先前研究的周期性倒置纳米金字塔(PiNPs)更有效地降低正面反射率。借助氮化硅抗反射涂层,我们预测PuNP在8°入射角下会将正面反射率降低至1%以下,这与黑硅相当。 PuNP的优异抗反射特性有助于40μm硅吸收层的吸收光电流密度为40.8 mA / cm2,比PiNP高0.7 mA / cm2,比倒金字塔高0.8 mA / cm2,高1 mA / cm2比直立的金字塔

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    《Photovoltaics, IEEE Journal of》 |2017年第2期|493-501|共9页
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