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Ultraviolet Plasmonic Aluminium Nanoparticles for Highly Efficient Light Incoupling on Silicon Solar Cells

机译:紫外线等离子体铝纳米粒子用于硅太阳能电池上的高效光耦合

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摘要

Plasmonic metal nanoparticles supporting localized surface plasmon resonances have attracted a great deal of interest in boosting the light absorption in solar cells. Among the various plasmonic materials, the aluminium nanoparticles recently have become a rising star due to their unique ultraviolet plasmonic resonances, low cost, earth-abundance and high compatibility with the complementary metal-oxide semiconductor (CMOS) manufacturing process. Here, we report some key factors that determine the light incoupling of aluminium nanoparticles located on the front side of silicon solar cells. We first numerically study the scattering and absorption properties of the aluminium nanoparticles and the influence of the nanoparticle shape, size, surface coverage and the spacing layer on the light incoupling using the finite difference time domain method. Then, we experimentally integrate 100-nm aluminium nanoparticles on the front side of silicon solar cells with varying silicon nitride thicknesses. This study provides the fundamental insights for designing aluminium nanoparticle-based light trapping on solar cells.
机译:支持局部表面等离子体激元共振的等离子体金属纳米颗粒在提高太阳能电池的光吸收方面引起了极大的兴趣。在各种等离子材料中,铝纳米颗粒由于其独特的紫外线等离子共振,低成本,大地丰满以及与互补金属氧化物半导体(CMOS)制造工艺的高度兼容性,最近已成为后起之秀。在这里,我们报告了一些关键因素,这些因素决定了位于硅太阳能电池正面的铝纳米颗粒的光耦合。我们首先使用有限差分时域方法数值研究了铝纳米颗粒的散射和吸收特性,以及纳米颗粒的形状,大小,表面覆盖率和间隔层对光耦合的影响。然后,我们将具有变化氮化硅厚度的100 nm铝纳米颗粒实验性地集成到硅太阳能电池的正面。这项研究为在太阳能电池上设计基于铝纳米粒子的光阱提供了基本见识。

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