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High absorption enhancement of invert funnel and conical nanowire solar cells with forward scattering

机译:倒漏漏斗和锥形纳米线太阳能电池的高吸收增强具有前进散射

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摘要

Silicon nanowire solar cells with enhanced absorptions have been designed. Engineering of the nanowire shapes have been used to increase the light trapping. The absorption enhancement of the cylindrical, conical, invert conical, funnel and invert funnel shaped nanowires have been studied and compared. Simulation results revealed that the invert funnel shaped nanowires has the best light trapping capability. Forward (Mie) scatterers have been added to the solar cells in the ITO top contact. The ITO scatterers appear like hemispheres which protrude from the top contact. Each nanowire is equipped with one hemispherical Mie scatterer on its top. The absorptions, percentages of the absorption enhancement, short circuit currents and power conversion efficiencies for all the proposed nanowire arrays before and after adding ITO scatterers have been computed and compared. The sizes of the Mie hemispheres have been chosen so that the short circuit current would be maximum. A significant enhancement in the absorption of all the solar cells with different nanowire shapes were realized due to the forward scattering. Among all the studied structures, some nanowire designs could reach short circuit currents of more than of 32 mA/cm(2) more than 52% absorption enhancements with respect to the simple cylindrical nanowires and more than 18% power conversion efficiencies. The simulation findings give the experimental researchers guidance on how to optimize the nanostructures to further improve the solar cell performance.
机译:设计了具有增强吸收的硅纳米线太阳能电池。已使用纳米线形状的工程来增加光捕获。研究并比较了圆柱形,圆锥形,倒置圆锥,漏斗状纳米线的吸收增强。仿真结果表明,逆变漏斗形纳米线具有最佳的光捕获能力。向前(mie)散射体已加入ITO顶部接触中的太阳能电池。 ITO散射体看起来像从顶部接触突出的半球。每个纳米线都配备了一个半球形散射体的顶部。已经计算了在添加ITO散射体之前和之后的所有提出的纳米线阵列的吸收增强,短路电流和功率转换效率的吸收百分比。选择了MIE半球的尺寸,使短路电流最大。由于前向散射,实现了具有不同纳米线形状的所有太阳能电池的吸收的显着增强。在所有研究的结构中,一些纳米线设计可以达到32mA / cm(2)的短路电流,相对于简单的圆柱形纳米线和超过18%的功率转换效率,超过52mA / cm(2)以上的吸收增强。仿真结果给出了实验研究人员对如何优化纳米结构以进一步提高太阳能电池性能的指导。

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