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Realizing omnidirectional light harvesting by employing hierarchical architecture for dye sensitized solar cells

机译:实现全向光收获采用分层架构染料敏化太阳能电池

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To improve the omnidirectional light-harvesting in dye-sensitized solar cells (DSSCs), here we present a dandelion-like structure composed of ZnO hemispherical shells and nanorods. Uniformly distributed hemispherical shells effectively suppress the reflection over the broadband region at incident angles up to 60 degrees, greatly improving the optical absorption of the DSSCs. In addition, modulating the length of the ZnO nanorods controls the omnidirectional characteristics of DSSCs. This phenomenon is attributed to the degree of periodicity of the ZnO dandelion-like structures. Cells with shorter rods exhibit a high degree of periodicity, thus the conversion efficiencies of the cells show specific angle-independent features. On the other hand, the cells with longer lengths reveal angle-dependent photovoltaic performance. Along with the simulation, the cells with dandelion-like ZnO structures can couple incident photons efficiently to achieve excellent broadband and omnidirectional light-harvesting performances experimentally, and the DSSCs enhanced the conversion efficiency by 48% at large incident angles. All these findings not only provide further insight into the light-trapping mechanism in these complex three-dimensional nanostructures but also offer efficient omnidirectional and broadband nanostructured photovoltaics for advanced applications.
机译:提高全向聚光涂料太阳能电池(DSSCs),我们在这里dandelion-like结构组成的氧化锌半球形纳米棒和贝壳。分布式半球形壳有效抑制在宽带反射区域在入射角度60度,很大改善DSSCs的光学吸收。另外,调节氧化锌的长度纳米棒控制全向DSSCs的特征。由于周期性的程度氧化锌dandelion-like结构。棒表现出高度的周期性,因此电池的转换效率具体angle-independent特性。一方面,细胞长度较长的angle-dependent光电性能。与模拟细胞dandelion-like氧化锌结构可以几个事件光子效率达到优秀宽带和全向聚光性能实验,DSSCs在提高了转换效率48%大事件的角度。只提供进一步的深入了解在这些复杂的内部机制三维纳米结构,但也提供高效的全方位和宽带纳米光电先进应用程序。

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