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首页> 外文期刊>Progress in photovoltaics >Broadband absorption enhancement in ultra-thin crystalline Si solar cells by incorporating metallic and dielectric nanostructures in the back reflector
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Broadband absorption enhancement in ultra-thin crystalline Si solar cells by incorporating metallic and dielectric nanostructures in the back reflector

机译:通过在背面反射器中加入金属和介电纳米结构,可增强超薄晶体硅太阳能电池的宽带吸收能力

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摘要

We propose a back reflecting scheme in order to enhance the maximum achievable current in one micron thick crystalline silicon solar cells. We perform 3D numerical investigations of the scattering properties of metallic nanostructures located at the back side and optimize them for enhancing absorption in the silicon layer. We validate our numerical results experimentally and also compare the absorption enhancement in the solar cell structure, both with quasi-periodic and random metallic nanostructures. We have looked at the interplay between the metallic nanostructures and an integrated back reflector. We show that the combination of metallic nanoparticles and a metallic reflector results in significant parasitic absorption. We compared this to another implementation based on titanium dioxide nanoparticles, which act as a Lambertian reflector of light. Our simulation and experimental results show that this proposed configuration results in reduced absorption losses and in broadband enhancement of absorption for ultra-thin solar cells, paving the way to an optimal back reflector for thin film photovoltaics. Copyright (c) 2014 John Wiley & Sons, Ltd.
机译:我们提出一种背反射方案,以增强一个微米厚的晶体硅太阳能电池中可达到的最大电流。我们对位于背面的金属纳米结构的散射特性进行了3D数值研究,并对其进行了优化以增强在硅层中的吸收。我们通过实验验证了我们的数值结果,还比较了准周期和随机金属纳米结构在太阳能电池结构中的吸收增强。我们已经研究了金属纳米结构和集成的背反射器之间的相互作用。我们表明金属纳米粒子和金属反射器的组合会导致明显的寄生吸收。我们将其与另一种基于二氧化钛纳米粒子的实现方式进行了比较,后者可以充当朗伯光反射器。我们的仿真和实验结果表明,该拟议的配置可降低吸收损耗并提高超薄太阳能电池的吸收率,从而为薄膜光伏电池的最佳背反射器铺平道路。版权所有(c)2014 John Wiley&Sons,Ltd.

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