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Optical properties and Limits of a Large-Area Periodic Nanophotonic Light Trapping Design for Polycrystalline Silicon Thin Film Solar Cells

机译:多晶硅薄膜太阳能电池大面积周期纳光光诱捕设计的光学性质和限制

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Rigorous finite element optical simulations have been used to examine the absorption of light in various crystalline silicon based, nanostructured solar cell architectures. The compared structures can all be produced on glass substrates using a periodically structured dielectric coating and a combination of electron-beam evaporation of silicon and subsequent solid phase crystallization. A required post-treatment by selective etching of non-compact silicon regions results in an absorber material loss. We show that by adequately tailoring the optical design around the processed silicon layer, the absorptance loss due to material removal can be completely overcome. The resulting silicon structure, which is an array of holes with non-vertical sidewalls, shows promising light path enhancement and features an even higher absorptance than the initial nanodome structure of the unetched absorber.
机译:已经使用严格的有限元光学模拟来检查各种晶体硅基纳米结构的太阳能电池架构中的光的吸收。可以使用周期性地结构的介电涂层和硅的电子束蒸发的组合和随后的固相结晶的电子束蒸发的组合来在玻璃基板上产生比较的结构。通过选择性蚀刻非紧凑型硅区域所需的后处理导致吸收材料损失。我们表明,通过在加工硅层周围充分定制光学设计,可以完全克服材料去除引起的吸收损失。由此产生的硅结构,其是具有非垂直侧壁的孔阵列,示出了有希望的光路增强,并且具有比未避压的吸收器的初始纳米物体结构更高的吸收率。

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