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Towards photonic luminescent solar concentrators

机译:迈向光子发光太阳能聚光器

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Luminescent solar concentrators (LSC) concentrate both diffuse and direct radiation with no need for tracking. They consist of transparent plates doped with luminescent materials that absorb incident light. Most of the emitted light is trapped inside the plate by total internal reflection, where it is guided to solar cells at the plate's edge faces. We investigate the concept of a photonic LSC (PLSC) that mitigates the major LSC loss mechanisms, namely the escape cone and reabsorption of emitted light. Embedding the luminescent material in a photonic crystal allows highly efficient light guiding and can reduce reabsorption through inhibited emission at unwanted wavelengths. We present FDTD simulations that show how the emission characteristic is influenced by the surrounding structure due to an altered photon density of states. Further, enhanced light guiding in a broad spectral range was obtained with efficiencies of up to 99.7%. We also report on our progress in fabrication of PLSC devices for experimental investigation of the concept: polymer thin films with and without luminescent doping were spin coated and characterized to estimate the number of dye layers needed in PLSCs to achieve sufficiently high absorption.
机译:发光太阳能集中器(LSC)既可以散射漫射辐射,也可以直接辐射,无需跟踪。它们由掺杂有吸收入射光的发光材料的透明板组成。大部分发出的光通过全内反射捕获在板内部,在板的端面被引导到太阳能电池。我们研究了减轻主要LSC损失机制(即逃逸锥和发射光的重吸收)的光子LSC(PLSC)的概念。将发光材料嵌入光子晶体中可以实现高效的光导,并可以通过抑制有害波长处的发射来减少重吸收。我们提出了FDTD模拟,该模拟显示了由于状态的光子密度改变而导致的发射特性如何受到周围结构的影响。此外,以高达99.7%的效率获得了在宽光谱范围内的增强的光导。我们还报告了我们在PLSC器件制造中的进展,以进行以下概念的实验研究:对具有和不具有发光掺杂的聚合物薄膜进行旋涂并进行表征,以估算PLSC中实现足够高吸收所需的染料层数。

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