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Broadband Enhancement of Light Harvesting in a Luminescent Solar Concentrator

机译:发光太阳能集中器的光收集的宽带增强

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Luminescent solar concentrators (LSCs) are large-area devices that absorb incident sunlight and emit luminescence photons with high quantum efficiency, which will finally be collected by a small photovoltaic (PV) system. The light-harvesting area of the PV system is much smaller than that of the LSC system, potentially reducing the cost of solar cells. Here, we present a theoretical description of the luminescent process in nanoscale LSCs where the conventional ray-optics model is no longer applicable. We demonstrate that a slot waveguide consisting of a nanometer-sized low-index slot region sandwiched by two high-index regions provides a broadband enhancement of light harvesting by the luminescent centers in the slot region. This is because the slot waveguide can 1) greatly enhance the spontaneous emission due to the Purcell effect, 2) dramatically increase the effective absorption length of luminescent centers, and 3) strongly improve the fluorescence quantum yield of luminescent centers. It is found that about 80% solar photons can be re-emitted even for a low fluorescent quantum yield of 0.5, and 80% re-emitted photons can be coupled to the slot waveguide. This LSC has the potential to be constructed in to a tandem structure which can absorb nearly full-spectrum solar photons, and also may be of special interest for building integrated nano-solar-cell applications.
机译:发光太阳能集中器(LSC)是大面积的设备,吸收入射的阳光并以高量子效率发射发光光子,最终将由小型光伏(PV)系统收集。光伏系统的光收集面积远小于LSC系统的光收集面积,从而有可能降低太阳能电池的成本。在这里,我们介绍了纳米LSC中发光过程的理论描述,而常规的射线光学模型不再适用。我们证明了由两个高折射率区域夹在中间的纳米级低折射率缝隙区域组成的缝隙波导通过缝隙区域中的发光中心提供了光捕获的宽带增强。这是因为缝隙波导可以1)由于赛尔效应(Purcell effect)大大增强了自发发射,2)大大增加了发光中心的有效吸收长度,以及3)大大提高了发光中心的荧光量子产率。发现即使对于0.5的低荧光量子产率,也可以重新发射大约80%的太阳光子,并且可以将80%的重新发射的光子耦合到缝隙波导。该LSC有可能被构建为可吸收几乎全光谱太阳光子的串联结构,并且对于构建集成的纳米太阳能电池应用也可能具有特殊的意义。

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