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Limitations and design considerations for donor-acceptor systems in luminescent solar concentrators: the effect of coupling-induced red-edge absorption

机译:发光太阳能聚光器中供体-受体系统的局限性和设计注意事项:耦合诱导的红边吸收的影响

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Luminescent solar concentrators (LSCs) use luminescence and waveguiding to concentrate photons within thin dielectric slabs for use in photovoltaic, lighting, and photobioreactor applications. Donor-acceptor systems of organic chromophores are widely used in LSCs to broaden the sunlight absorption range and attempt to reduce loss-inducing reabsorption by the emitting chromophore. We use raytrace simulations across a large parameter space to model the performance of LSCs containing two novel donor-acceptor trimers based on the perylene moiety. We find that under certain conditions, trimers outperform single-dye LSCs as expected. However, at higher concentrations, a slight increase in red-edge absorption by the trimers increases reabsorption and has a deleterious effect on LSC performance. This underscores the large effect that even small changes in the red edge can have, and may discourage the use of donor-acceptor schemes with high interchromophore coupling that promotes red-edge absorption. Finally, we show that for a LSC-PV pair, selecting a PV cell that is well-matched with the LSC emission spectrum has a large effect on the flux gain of the system, and that the systems studied here are well-matched to emerging PV technologies.
机译:发光太阳能聚光器(LSC)使用发光和波导将光子聚集在薄介电平板中,以用于光伏,照明和光生物反应器应用。有机生色团的供体-受体体系广泛用于LSC中,以扩大日光吸收范围,并尝试减少发射生色团引起的损失诱导的重吸收。我们使用跨较大参数空间的光线跟踪模拟来建模包含基于the部分的两个新型供体-受体三聚体的LSC的性能。我们发现,在某些条件下,三聚体比预期的要好于单染料LSC。但是,在较高的浓度下,三聚体对红边吸收的轻微增加会增加重吸收,并对LSC性能产生有害影响。这强调了即使红色边缘的微小变化也可能产生的巨大影响,并且可能不鼓励使用具有高发色团耦合度的促进红色边缘吸收的供体-受体方案。最后,我们表明,对于LSC-PV对,选择与LSC发射光谱完全匹配的PV电池对系统的通量增益有很大的影响,并且这里研究的系统与新兴的系统非常匹配光伏技术。

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