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Single Grain Boundary Modeling and Design of Microcrystalline Si Solar Cells

机译:微晶硅太阳能电池的单晶边界建模与设计

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摘要

For photovoltaic applications, microcrystalline silicon has a lot of advantages, such as the ability to absorb the near-infrared part of the solar spectrum. However, there are many dangling bonds at the grain boundary in microcrystalline Si. These dangling bonds would lead to the recombination of photo-generated carriers and decrease the conversion efficiency. Therefore, we included the grain boundary in the numerical study in order to simulate a microcrystalline Si solar cell accurately, designing new three-terminal microcrystalline Si solar cells. The 3-μm-thick three-terminal cell achieved a conversion efficiency of 10.8%, while the efficiency of a typical two-terminal cell is 9.7%. The three-terminal structure increased the JSC but decreased the VOC, and such phenomena are discussed. High-efficiency and low-cost Si-based thin film solar cells can now be designed based on the information provided in this paper.
机译:对于光伏应用,微晶硅具有很多优势,例如能够吸收太阳光谱的近红外部分。然而,在微晶硅的晶界处有许多悬空键。这些悬空键将导致光生载流子的重组并降低转化效率。因此,为了精确地模拟微晶硅太阳能电池,我们将晶界包括在数值研究中,设计了新的三端微晶硅太阳能电池。厚度为3μm的三端电池的转换效率为10.8%,而典型的两端电池的转换效率为9.7%。三端结构增加了JSC但降低了VOC,并讨论了这种现象。现在可以根据本文提供的信息来设计高效,低成本的硅基薄膜太阳能电池。

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