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Integrating photonic crystals in thin film silicon photovoltaics

机译:将光子晶体集成在薄膜硅光伏中

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Wave-optics analysis is performed to investigate the benefits of integrating photonic crystals into micromorph cells. Specifically, we theoretically investigate two novel micromorph cells which integrate photonic crystals and compare their optical performance with that of conventional micromorph cells. In the first innovative micromorph cell configuration the intermediate reflector is a selectively transparent and conducting photonic crystal (STCPC). In the second micromorph cell its bottom μc-Si:H cell is structured in the form of an inverted opal. Our results show that with the AM1.5 solar spectrum at normal incidence the current generated in a conventional micromorph cell is increased from 12.1 mA/cm~2 to 13.0 mA/cm2 when the bottom μc-Si:H cell is structured in the form of an inverted opal. However, the current generated in the micromorph cell can be increased to as much as 13.7 mA/cm~2 when an STCPC is utilized as the intermediate reflector. Furthermore, the thickness of the μc-Si:H opal must be relatively large in order to absorb a sufficient amount of the solar irradiance, which is expected to degrade the electrical performance of the device. In contrast, our results suggest that STCPC intermediate reflectors are a viable technology that could potentially enhance the performance of micromorph cells.
机译:进行波光光学分析以研究将光子晶体集成到微观细胞中的益处。具体地,我们从理论上研究了整合光子晶体的两种新微晶细胞,并将它们的光学性能与常规微观细胞的光学性能进行比较。在第一创新微观电池配置中,中间反射器是选择性透明和导电光子晶体(STCPC)。在第二微观细胞中,其底部μC-Si:H细胞以倒置蛋白石的形式构成。我们的研究结果表明,当底部μC-Si:H细胞以形式构建时,在正常发射时,在正常发生率下,在正常发生率下产生的电流从12.1mA / cm〜2至13.0mA / cm 2增加倒置蛋白石。然而,当STCPC用作中间反射器时,微立体电池中产生的电流可以增加到多达13.7mA / cm〜2。此外,μC-Si:HOPAL的厚度必须相对较大,以吸收足够量的太阳辐照度,这预期降低了装置的电性能。相比之下,我们的结果表明,STCPC中间反射器是一种可行的技术,可以提高微观细胞的性能。

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