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Omnidirectional Current Enhancement From Laminated Moth-Eye Textured Polymer Packaging for Large-Area, Flexible III-V Solar Modules

机译:用于大面积的层压蛾眼纹理聚合物包装的全向电流增强,柔性III-V太阳能模块

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摘要

Epitaxial lift-off (ELO) processes have allowed for cheaper development of mechanically flexible, ultra-thin, and high-efficiency III-V solar cells. ELO solar cells are natural candidates for applications where solar cells must conform to curved surfaces and provide high efficiency and high specific power generation (W/kg). Such examples include power generation for unmanned aerial vehicles, electric vehicles, and portable electrical power. However, when considering these mobile solar applications, large variations in angle of incidence (AOI) that inevitably occur can greatly decrease overall system efficiency due to significant Fresnel reflections. In this article, we demonstrate the integration of moth-eye antireflection nanostructures on the polymer packaging layer of ELO solar cell arrays using a low-cost, colloidal self-assembly process. The moth-eye structures mitigate Fresnel reflections and increase photocurrent generation over all measured angles of incidence relative to ELO solar cell arrays with traditional untextured polymer packaging. The nanostructures survive a commercial lamination procedure, an important criterion that must be met to ensure the feasibility of integration into commercial processing. Outdoor solar characterization measurements are performed and, under direct optical illumination, moth-eye textured solar cell arrays show a maximum I-sc enhancement of similar to 58% at 79 degrees AOI relative to traditional untextured polymer packaged solar cell arrays, and when exposed to both direct and diffuse optical illumination a maximum I-sc enhancement of similar to 23% at 79 degrees AOI is observed.
机译:外延升降(ELO)工艺允许较便宜的机械柔性,超薄和高效III-V太阳能电池开发。 ELO太阳能电池是用于太阳能电池必须符合弯曲表面并提供高效率和高特定发电(W / kg)的应用的自然候选。这样的示例包括无人驾驶飞行器,电动车辆和便携式电力的发电。然而,在考虑这些移动太阳能应用时,由于显着的菲涅耳反射,不可避免地发生的入射角(AOI)的发生率的大变化可以大大降低整体系统效率。在本文中,我们用低成本,胶体自组装工艺证明了蛾眼抗反射纳米结构对ELO太阳能电池阵列聚合物包装层的整合。蛾眼结构减轻菲涅耳反射,并通过传统的未致致致致致致致致致致致致致致致致致致细的聚合物包装来增加所有测量的入射角的光电流产生。纳米结构在商业层压程序中存活,这是必须满足的重要标准,以确保集成到商业处理中的可行性。进行户外太阳能表征测量,并且在直接光学照射下,蛾眼纹理太阳能电池阵列显示出最大I-SC增强,相对于传统的未致致雕刻的聚合物包装的太阳能电池阵列,并且当暴露于时,最大I-SC增强与79摄氏度的58%相似。观察到直接和漫反射光学照明既相对于79摄氏度相似的最大I-SC增强率为23%。

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