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Experimental quantification of useful and parasitic absorption of light in plasmon-enhanced thin silicon films for solar cells application

机译:用于太阳能电池的等离激元增强薄膜中有用和寄生光吸收的实验量化

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摘要

A combination of photocurrent and photothermal spectroscopic techniques is applied to experimentally quantify the useful and parasitic absorption of light in thin hydrogenated microcrystalline silicon (μc-Si:H) films incorporating optimized metal nanoparticle arrays, located at the rear surface, for improved light trapping via resonant plasmonic scattering. The photothermal technique accounts for the total absorptance and the photocurrent signal accounts only for the photons absorbed in the μc-Si:H layer (useful absorptance); therefore, the method allows for independent quantification of the useful and parasitic absorptance of the plasmonic (or any other) light trapping structure. We demonstrate that with a 0.9 μm thick absorber layer the optical losses related to the plasmonic light trapping in the whole structure are insignificant below 730 nm, above which they increase rapidly with increasing illumination wavelength. An average useful absorption of 43% and an average parasitic absorption of 19% over 400–1100 nm wavelength range is measured for μc-Si:H films deposited on optimized self-assembled Ag nanoparticles coupled with a flat mirror (plasmonic back reflector). For this sample, we demonstrate a significant broadband enhancement of the useful absorption resulting in the achievement of 91% of the maximum theoretical Lambertian limit of absorption.
机译:应用光电流和光热光谱技术的组合,通过实验对量化的光进行了有用的和寄生的吸收,该光吸收在掺入优化金属纳米粒子阵列的氢化微晶硅(μc-Si:H)薄膜中,用于改善通孔的光捕获能力共振等离子体散射。光热技术占总吸收率,光电流信号仅占μc-Si:H层中吸收的光子(有用吸收率)。因此,该方法允许对等离子(或任何其他)光捕获结构的有用和寄生吸收率进行独立定量。我们证明,对于0.9μm厚的吸收层,在730pingnm以下,与整个结构中的等离激元光俘获有关的光学损耗微不足道,在730 nm以下,它们随照明波长的增加而迅速增加。在400-1100 nm波长范围内测量的μc-Si:H薄膜的平均有用吸收为43%,平均寄生吸收为19%,沉积在优化的自组装Ag纳米粒子上并结合了平面镜(等离子后向反射器)。对于此样品,我们证明了有用吸收的显着宽带增强,从而导致达到了理论上最大的朗伯吸收率极限的91%。

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