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Optical absorption in microstructured crystalline silicon thin films

机译:微结构晶体硅薄膜中的光吸收

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In Si solar cells, the cost of the Si wafer itself accounts for over 50 % of energy conversion; therefore, economic use of Si contributes significantly towards lowering cost. Thin-film (∼ 25 µm) crystalline Si (c-Si) solar cells films are ideally-suited for low-cost photovoltaics. These thin-film c-Si solar cells are manufactured through a wide range of industrial processes including epitaxial growth, smart-cut, and layer transfer. In these devices, weak optical absorption of Si fundamentally limits performance. Historically, several surface texturing mechanisms have evolved to enhance optical absorption in solar cells. Most of geometrical-optics based texturing mechanisms require etched features comparable to thin-film thickness. As a result, randomly-created subwavelength structures are finding increasing applications for reducing surface reflection as well as enhancing near IR absorption. We report on diffractive and physical optics mechanisms in enhancing absorption in thin Si films. Randomly-created subwavelength diffractive structures as well periodically-patterned deeply-etched subwavelength structures have been demonstrated to be highly effective in reducing reflection and creating broadband absorption using scattering and physical optics mechanisms.
机译:在硅太阳能电池中,硅晶片本身的成本占能量转换的50%以上;因此,Si的经济使用显着有助于降低成本。薄膜(约25 µm)晶体Si(c-Si)太阳能电池膜非常适合低成本光伏电池。这些薄膜c-Si太阳能电池是通过广泛的工业过程制造的,包括外延生长,智能切割和层转移。在这些器件中,Si的弱光吸收从根本上限制了性能。历史上,已经发展了几种表面纹理化机制来增强太阳能电池中的光吸收。大多数基于几何光学的纹理化机制都需要与薄膜厚度相当的蚀刻特征。结果,发现随机创建的亚波长结构在减少表面反射以及增强近红外吸收方面的应用越来越广泛。我们报告了衍射和物理光学机制,以增强Si薄膜的吸收。已经证明,随机创建的亚波长衍射结构以及周期性图案化的深蚀刻亚波长结​​构在减少反射和使用散射和物理光学机制创建宽带吸收方面非常有效。

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