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Surface plasmon enhanced light-trapping in polycrystalline silicon thin-film solar

机译:表面等离子体增强多晶硅薄膜太阳能的轻俘获

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These The paper reports a development and implementation of light trapping based on light scattering from plasmonic metal nanoparticles. The nanoparticles were formed on the surface of planar polycrystalline Si thin-film solar cells by annealing of a precursor Ag film. The light absorption by the cells and resulting photocurrent enhancement is maximised by optimising the design of the nanoparticle light-trapping scheme, which includes the nanoparticle size and location, the local dielectric environment, and an application of a supplementary back-surface reflector. A large photocurrent enhancement is achieved due to high scattering and coupling efficiencies of the incident light from Ag nanoparticles into the thin-film cells. For the optimum design comprising a “Si-film/nanoparticles/magnesium fluoride/diffuse white paint” structure short-circuit current enhancement of 44% is demonstrated for the cell fabricated by e-beam evaporation on 3 mm thick planar glass superstrate. The enhancement is further increased up to 50% when the developed light-trapping scheme is applied to the cell fabricated by PECVD on 1 mm thick planar glass superstrate.
机译:这些论文报告了基于来自等离子体金属纳米颗粒的光散射的光捕获的开发和实现。通过退火的前体Ag膜在平面多晶硅Si薄膜太阳能电池的表面上形成纳米颗粒。通过优化纳米颗粒光捕获方案的设计,细胞和产生光电流增强的光吸收,其包括纳米颗粒尺寸和位置,局部介电环境以及补充背面反射器的应用。由于从Ag纳米颗粒的入射光的高散射和耦合效率进入薄膜细胞,实现了大的光电流增强。对于包含“Si膜/纳米粒子/氟化镁/漫射白色涂料”的最佳设计,结构短路电流增强44%用于通过在3mm厚的平面玻璃玻璃上的电磁蒸发制造的电池。当开发的光捕获方案应用于由PECVD上的1mm厚的平面玻璃玻璃叠层制造的电池时,增强进一步增加到50%。

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