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Optical properties of textured sheets - an efficient matrix-based modelling approach

机译:纹理纸张的光学特性 - 一种高效的基于矩阵的建模方法

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A large variety of optical systems incorporate multiple textured surfaces for reflectance reduction, light redirection or absorptance enhancement. One example for such a system is a textured silicon wafer solar cell. We introduce the OPTOS (Optical Properties of Textured Optical Sheets) formalism for the modelling of light propagation and absorption in optically thick sheets with two arbitrary surface textures at the front and rear side, and demonstrate applications. In contrast to many optical simulation techniques, which are tailored to specific surface morphologies, the OPTOS formalism is a matrix-based method that allows including textures that are described by different optical modelling techniques (e.g. ray optical or wave optical) within one simulation tool. It offers the computationally efficient simulation of light redistribution and non-coherent propagation inside thick sheets. After calculating redistribution matrices for each individual surface texture with the most appropriate technique, optical properties of the complete textured sheet, like e. g. angle dependent reflectance, transmittance or depth resolved absorptance, can be determined via iterative matrix multiplications (for propagation and redistribution) with low computational effort. In this work, we focus on textured wafer-based silicon solar cells as application examples for the OPTOS formalism. The simulation enables us to investigate and optimize combinations of front and rear textures on solar cells in order to increase the photocurrent generation. A solar cell with inverted pyramid front side and a diffractive grating at the rear is found to show similar light trapping properties as one with Lambertian scattering at the rear.
机译:各种光学系统包括多个纹理表面,用于减少反射,光重定向或吸收性增强。这种系统的一个示例是纹理硅晶片太阳能电池。我们介绍了用于在光学厚板中的光传播和吸收的光学性能的光学(光学性质)形式主义,并在前后侧具有两个任意表面纹理,并演示应用。与对特定表面形态定制的许多光学模拟技术相比,光学形式主义是基于矩阵的方法,其允许包括在一个模拟工具内通过不同的光学建模技术(例如射线光学或波光学)描述的纹理。它提供了厚床内的光再分配和非相干传播的计算上高效仿真。在用最合适的技术中计算每个单独的表面纹理的再分配矩阵之后,完整纹理的表格的光学性质,如e。 G。角度依赖反射率,透射率或深度分辨吸收率可以通过迭代矩阵乘法(用于传播和再分配)来确定具有低计算工作的。在这项工作中,我们专注于基于纹理的晶圆硅太阳能电池作为光学形式主义的应用示例。该模拟使我们能够研究和优化太阳能电池上的前后纹理的组合,以增加光电流。发现具有倒置金字塔前侧的太阳能电池和后部的衍射光栅,以显示与后部的灯泡散射类似的光捕获性质。

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