首页> 外文期刊>Solar Energy Materials and Solar Cells: An International Journal Devoted to Photovoltaic, Photothermal, and Photochemical Solar Energy Conversion >Simultaneous realization of light distribution and trapping in micromorph tandem solar cells using novel double-layered antireflection coatings
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Simultaneous realization of light distribution and trapping in micromorph tandem solar cells using novel double-layered antireflection coatings

机译:使用新型双层抗反射涂层同时实现微晶型串联太阳能电池中的光分布和俘获

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摘要

Implementing antireflection (AR) coatings in micromorph tandem solar cells is a challenging process in which not only more sunlight should get conducted into the cells, but also the current matching between subcells should either be maintained or get improved. In this work, the novel double-layered AR coatings were prepared on either one side or two sides of glass superstrates using hybridized hollow silica nanosphere (HSN) sols. As a result of improvement in light distribution via double-layered AR coatings, the current difference between the top and bottom subcells was decreased to be 0.05 mA/cm(2), much smaller than that of untreated cells, 0.33 mA/cm(2). Furthermore, the cells grown on the two-sided AR coated superstrates demonstrated the largest increases in current densities of top and bottom subcells, 4.20% and 7.53%, respectively, which were much higher than those of the cells on one-sided AR coated superstrates. The underlying origin was ascribed to the better light trapping induced by multiscale texturing at front boron-doped zinc oxide (BZO) electrodes, which resulted from the conformal growth of BZO on HSNs with unique surface morphologies. The findings provided a practical way to simultaneously realize light distribution and trapping using the two-sided AR coated glass superstrates without any amendment of layers inside micromorph tandem solar cells. (C) 2015 Elsevier B.V. All rights reserved.
机译:在微晶硅串联太阳能电池中实现抗反射(AR)涂层是一个具有挑战性的过程,不仅不仅应将更多的阳光传导到电池中,而且还应保持或改善子电池之间的电流匹配。在这项工作中,使用混合的空心二氧化硅纳米球(HSN)溶胶在玻璃盖板的一侧或两侧制备了新颖的双层增透膜。由于通过双层增透膜改善了光分布,顶部和底部子电池之间的电流差减小到0.05 mA / cm(2),远小于未处理的电池0.33 mA / cm(2) )。此外,在双面涂有AR的覆层板上生长的细胞表现出最大的电流密度增加,分别为顶部和底部子电池的电流密度的4.20%和7.53%,远高于双面涂有AR的覆层板上的细胞密度的增加。 。潜在的起源归因于在前掺硼氧化锌(BZO)电极上多尺度纹理化引起的更好的光捕获,这是由于BZO在具有独特表面形态的HSN上共形生长所致。这些发现提供了一种实用的方法,可以使用双面镀AR的玻璃覆板同时实现光分布和捕获,而无需对微晶硅串联太阳能电池内的层进行任何修改。 (C)2015 Elsevier B.V.保留所有权利。

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