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首页> 外文期刊>Photovoltaics, IEEE Journal of >Air Gaps as Intermediate Selective Reflectors to Reach Theoretical Efficiency Limits of Multibandgap Solar Cells
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Air Gaps as Intermediate Selective Reflectors to Reach Theoretical Efficiency Limits of Multibandgap Solar Cells

机译:气隙作为中间选择性反射器达到多带隙太阳能电池的理论效率极限

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Efficient external luminescence is a prerequisite for high-voltage solar cells. To approach the Shockley–Queisser limit, a highly reflective rear mirror is required. This mirror enhances the voltage of the solar cell by providing internally luminescent photons with multiple opportunities for escaping out the front surface. Likewise, intermediate reflectors in a multibandgap solar cell can assist external luminescence to enhance the voltage for each cell in a stack. These intermediate reflectors must also transmit the subbandgap photons to the next cell in the stack. A practical implementation of an intermediate selective reflector is an air gap sandwiched by antireflection coatings. The air gap provides perfect reflection for angles outside the escape cone, and the antireflection coating transmits angles inside the escape cone. As the incoming sunlight is within the escape cone, it is transmitted on to the next cell, while most of the internally trapped luminescence is reflected. We calculate that air gap intermediate reflectors, along with a rear mirror, can provide an absolute efficiency increase of ≈5% in multibandgap cells.
机译:高效的外部发光是高压太阳能电池的先决条件。为了接近肖克利-奎塞尔极限,需要高反射率的后视镜。该反射镜通过为内部发光光子提供逃逸前表面的多种机会来提高太阳能电池的电压。同样,多带隙太阳能电池中的中间反射器可以辅助外部发光,以增强堆叠中每个电池的电压。这些中间反射器还必须将子带隙光子传输到堆栈中的下一个单元。中间选择性反射器的实际实现是由防反射涂层夹在中间的气隙。气隙可为逃生锥外部的角度提供完美的反射,而防反射涂层可在逃生锥内部传输角度。由于入射的阳光在逃逸锥内,因此会传输到下一个单元格,而大部分内部捕获的发光都会被反射。我们计算出,在多带隙电池中,气隙中间反射器和后视镜可以使绝对效率提高5%。

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