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Interdependence of reabsorption and internal energy losses in luminescent solar concentrators

机译:发光太阳能聚光器的重吸收与内部能量损失的相互依赖性

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As a complementary device to photovoltaic (PV) cells, luminescent solar concentrators (LSCs) can reduce the cost of solar energy by replacing the expensive PV material with inexpensive energy-harvesting plastic or glass matrix. However, due to its low efficiency, LSCs are still not commercially viable. The low efficiency is due to the various losses associated with light harvesting and trapping. Most of these losses come from reabsorption and escape of re-emitted energy from the LSC device. State-of-the-art LSC technology focuses on decreasing reabsorption loss by employing luminophores with a large Stokes shift. But these materials typically have low quantum yield. Increasing the Stokes shift of the luminophore reduces reabsorption but introduces substantial loss due to low quantum yield and the Stokes shift of the re-emitted photons. The interdependence of these losses is studied computationally using a ray-tracing model that accounts for reabsorption, Stokes shift, escape cone loss, and matrix loss. It is shown that using high Stokes-shift luminophores does not give the highest energy efficiency. Higher energy efficiency is obtained by optimizing the Stokes shift. Even greater performance can be achieved by employing high-quantum-yield dyes with intermediate Stokes shift. LSC devices based on this approach could be nearly twice as efficient as those based on conventional luminophores, such as Rhodamine B.
机译:作为光伏(PV)电池的补充设备,发光太阳能集中器(LSC)可以通过用廉价的能量收集塑料或玻璃基质代替昂贵的PV材料来降低太阳能的成本。但是,由于效率低下,LSC在商业上仍然不可行。低效率是由于与光收集和捕获有关的各种损失。这些损耗中的大部分来自LSC设备的重新吸收和重新释放的能量逸散。最新的LSC技术致力于通过采用具有较大Stokes位移的发光体来减少重吸收损失。但是这些材料通常具有较低的量子产率。发光体的斯托克斯位移增加会降低重吸收,但由于量子产率低和重新发射的光子的斯托克斯位移而导致大量损失。这些损失的相互依赖性使用光线跟踪模型进行了计算研究,该模型考虑了重吸收,斯托克斯频移,逃逸锥损耗和矩阵损耗。结果表明,使用高斯托克斯频移发光体并不能获得最高的能量效率。通过优化斯托克斯位移获得更高的能源效率。通过使用具有中等斯托克斯位移的高量子产率染料,可以实现更高的性能。基于这种方法的LSC设备的效率几乎是基于常规发光体(如若丹明B)的LSC设备的两倍。

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