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Ultrathin and easy-processing photonic crystal absorbing layers to enhance light absorption efficiency of solar cells

机译:超薄且易于加工的光子晶体吸收层,可提高太阳能电池的光吸收效率

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We report the design and optimization of photonic crystal (PhC) structures within a GaAs or InAs absorption layer in thin film solar cells. In the PhC structure, hexagonal cylinder hole scatterers with the same upper and lower surfaces are used, and the cases of air and silica filled within these hexagonal hole scatterers are discussed, respectively. We designed and optimized the PhC absorption layer structures with four different conditions: the bulk materials comprising the absorption layer are either GaAs or InAs, and the hexagonal hole PhC scatterers are filled with either air or silica. The simulation results indicate that the absorptivity of the absorption layer can be greatly improved by using a PhC structure within the absorption layer. For height H = 0.20 μ m, the maximum absorptivity of the GaAs absorption layer is 79.51%, while the maximum absorptivity of the InAs absorption layer is 96.57%. In addition, the absorptivity of the PhC structured absorption layer is less affected by the light incident angle, as the absorptivity of the structure is above 65% even when the light incident angle is 70°. Meanwhile, the porous PhC structure within the absorption layer is ideal for the filling of quantum dots, which has little effect on the absorptivity of light but can greatly improve the photoelectric conversion efficiency.
机译:我们报告了薄膜太阳能电池的GaAs或InAs吸收层内的光子晶体(PhC)结构的设计和优化。在PhC结构中,使用具有相同上,下表面的六边形圆柱孔散射体,并分别讨论了在这些六边形孔散射体中填充空气和二氧化硅的情况。我们设计和优化了具有四种不同条件的PhC吸收层结构:构成吸收层的块状材料为GaAs或InAs,六角孔PhC散射体填充有空气或二氧化硅。仿真结果表明,通过在吸收层内使用PhC结构可以大大提高吸收层的吸收率。对于高度H =0.20μm,GaAs吸收层的最大吸收率为79.51%,而InAs吸收层的最大吸收率为96.57%。另外,PhC结构的吸收层的吸收率受光入射角的影响较小,因为即使当光入射角为70°时结构的吸收率也高于65%。同时,吸收层内的多孔PhC结构是填充量子点的理想选择,对光的吸收率影响很小,但可以大大提高光电转换效率。

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