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Light Coupling and Trapping in Ultrathin Cu(In,Ga)Se-2 Solar Cells Using Dielectric Scattering Patterns

机译:超薄Cu(In,Ga)Se-2太阳能电池的介电散射图样的光耦合和俘获

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摘要

We experimentally demonstrate photocurrent enhancement in ultrathin Cu(In,Ga)Se-2 (COO solar cells with absorber layers of 460 nm by nanoscale dielectric light scattering patterns printed by substrate conformal imprint lithography. We show that patterning the front side of the device with TiO2 nanoparticle arrays results in a small photocurrent enhancement in almost the entire 400-1200 nm spectral range due to enhanced light coupling into the cell. Three-dimensional finite-difference time-domain simulations are in good agreement with external quantum efficiency measurements. Patterning the Mo/CIGSe back interface using SiO2 nanoparticles leads to strongly enhanced light trapping, increasing the efficiency from 11.1% for a flat to 12.3% for a patterned cell. Simulations show that optimizing the array geometry could further improve light trapping. Including nanoparticles at the Mo/CIGSe interface leads to substantially reduced parasitic absorption in the Mo back contact. Parasitic absorption in the back contact can be further reduced by fabricating CIGSe cells on top of a SiO2-patterned In2O3:Sn (ITO) back contact. Simulations show that these semitransparent cells have similar spectrally averaged reflection and absorption in the CIGSe active layer as a Mo-based patterned cell, demonstrating that the absorption losses in the Mo can be partially turned into transmission through the semitransparent geometry.
机译:我们通过基板保形压印光刻技术印刷的纳米级介电光散射图案,通过实验证明了超薄Cu(In,Ga)Se-2(COO太阳能电池的吸收层为460 nm)中的光电流增强。 TiO2纳米颗粒阵列由于增强了进入细胞的光耦合而几乎在整个400-1200 nm光谱范围内产生了较小的光电流增强;三维有限差分时域模拟与外部量子效率测量非常吻合。使用SiO2纳米颗粒的Mo / CIGSe背面界面可显着增强光捕获,将效率从平面电池的11.1%提高到图案化电池的12.3%,仿真表明优化阵列几何形状可进一步改善光捕获。 / CIGSe界面导致Mo背接触中的寄生吸收大大降低。通过在SiO2图案化的In2O3:Sn(ITO)背面触点顶部制造CIGSe电池,可以进一步减少背面触点的位置。仿真表明,这些半透明单元格在CIGSe活性层中的光谱平均反射和吸收与基于Mo的图案化单元格相似,表明Mo的吸收损耗可以部分转化为通过半透明几何结构的透射。

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