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首页> 外文期刊>Journal of physical chemistry letters >Multiscale Study of Plasmonic Scattering and Light Trapping Effect in Silicon Nanowire Array Solar Cells
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Multiscale Study of Plasmonic Scattering and Light Trapping Effect in Silicon Nanowire Array Solar Cells

机译:硅纳米线阵列太阳能电池等离子散射和光捕效的多尺度研究

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摘要

Nanometallic structures that support surface plasmons provide new ways to confine light at deep-subwavelength scales. The effect of light scattering in nanowire array solar cells is studied by a multiscale approach combining classical electromagnetic (EM) and quantum mechanical simulation. A photovoltaic device is constructed by integrating a silicon nanowire array with a plasmonic silver nanosphere. The light scatterings by plasmonic element and nanowire array are obtained via classical EM simulations, while current voltage characteristics and optical properties of the nanowire cells are evaluated quantum mechanically. We found that the power conversion efficiency (PCE) of photovoltaic device is substantially improved due to the local field enhancement of the plasmonic effect and light trapping by the nanowire array. In addition, we showed that there exists an optimal nanowire number density in terms of optical confinement and solar cell PCE.
机译:支撑表面等离子体的纳米金属结构提供了在深亚和深度尺度处限制光的新方法。 通过组合经典电磁(EM)和量子力学模拟的多尺度方法,研究了纳米线阵列太阳能电池中的光散射的影响。 通过将硅纳米线阵列与等离子体纳米末部集成来构造光伏器件。 通过典型的EM模拟获得等离子体元件和纳米线阵列的光散射,而纳米线电池的电流电压特性和光学性能是机械地评估量子。 我们发现,由于纳米线阵列的等离子体效应和光俘获,光伏器件的功率转换效率(PCE)显着提高。 此外,我们表明,在光学限制和太阳能电池PCE方面存在最佳的纳米线数密度。

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