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Absorption-Enhanced Ultra-Thin Solar Cells Based on Horizontally Aligned p–i–n Nanowire Arrays

机译:基于水平对准的p–i–n纳米线阵列的吸收增强型超薄太阳能电池

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摘要

A horizontally aligned GaAs p–i–n nanowire array solar cell is proposed and studied via coupled three-dimensional optoelectronic simulations. Benefiting from light-concentrating and light-trapping properties, the horizontal nanowire array yields a remarkable efficiency of 10.8% with a radius of 90 nm and a period of 5 radius, more than twice that of its thin-film counterpart with the same thickness. To further enhance the absorption, the nanowire array is placed on a low-refractive-index MgF substrate and capsulated in SiO , which enables multiple reflection and reabsorption of light due to the refractive index difference between air/SiO and SiO /MgF . The absorption-enhancement structure increases the absorption over a broad wavelength range, resulting in a maximum conversion efficiency of 18%, 3.7 times higher than that of the thin-film counterpart, which is 3 times larger in GaAs material volume. This work may pave the way for the development of ultra-thin high-efficiency solar cells with very low material cost.
机译:通过耦合的三维光电模拟,提出并研究了水平排列的GaAs p–i–n纳米线阵列太阳能电池。得益于聚光和俘获光的性能,水平纳米线阵列在半径为90 nm,半径为5的情况下,产生了10.8%的显着效率,是相同厚度的薄膜同类产品的两倍以上。为了进一步增强吸收,将纳米线阵列放置在低折射率MgF基板上并封装在SiO中,由于空气/ SiO和SiO / MgF之间的折射率差异,纳米线阵列能够​​实现光的多次反射和重吸收。吸收增强结构可在较宽的波长范围内增加吸收,因此最大转换效率为18%,比薄膜砷化镓材料体积的3倍高3.7倍。这项工作可能为材料成本非常低的超薄高效太阳能电池的开发铺平道路。

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