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Monte Carlo simulations of quantum dot solar concentrators: ray tracing based on fluorescence mapping

机译:量子点太阳能集中器的蒙特卡洛模拟:基于荧光映射的射线追踪

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One promising application of semiconductor nanostructures in the field of photovoltaics might be quantum dot solar concentrators. Quantum dot containing nanocomposite thin films are synthesized at EPFL-LESO by a low cost sol-gel process. In order to study the potential of the novel planar photoluminescent concentrators, reliable computer simulations are needed. A computer code for ray tracing simulations of quantum dot solar concentrators has been developed at EPFL-LESO on the basis of Monte Carlo methods that are applied to polarization-dependent reflection/transmission at interfaces, photon absorption by the semiconductor nanocrystals and photoluminescent reemission. The software allows importing measured or theoretical absorption/reemission spectra describing the photoluminescent properties of the quantum dots. Hereby the properties of photoluminescent reemission are described by a set of emission spectra depending on the energy of the incoming photon, allowing to simulate the photoluminescent emission using the inverse function method. By our simulations, the importance of two main factors is revealed, an emission spectrum matched to the spectral efficiency curve of the photovoltaic cell, and a large Stokes shift, which is advantageous for the lateral energy transport. No significant energy losses are implied when the quantum dots are contained within a nanocomposite coating instead of being dispersed in the entire volume of the pane. Together with the knowledge on the optoelectronical properties of suitable photovoltaic cells, the simulations allow to predict the total efficiency of the envisaged concentrating PV systems, and to optimize photoluminescent emission frequencies, optical densities, and pane dimensions.
机译:半导体纳米结构在光伏领域的一种有前途的应用可能是量子点太阳能集中器。通过低成本的溶胶-凝胶工艺在EPFL-LESO上合成了包含量子点的纳米复合薄膜。为了研究新型平面光致发光聚光器的潜力,需要可靠的计算机模拟。 EPFL-LESO在蒙特卡洛方法的基础上,开发了用于量子点太阳能聚光器的射线追踪模拟的计算机代码,该方法已应用于界面上偏振相关的反射/透射,半导体纳米晶体的光子吸收和光致发光再发射。该软件允许导入描述量子点的光致发光特性的测量或理论吸收/发射光谱。因此,取决于入射光子的能量,通过一组发射光谱来描述光致发光的性质,从而允许使用反函数方法来模拟光致发光的发射。通过我们的模拟,揭示了两个主要因素的重要性:与光伏电池的光谱效率曲线匹配的发射光谱,以及较大的斯托克斯位移,这有利于横向能量传输。当量子点包含在纳米复合涂层中而不是分散在窗格的整个体积中时,则没有明显的能量损失。结合对合适光伏电池的光电特性的了解,模拟可以预测所设想的聚光光伏系统的总效率,并优化光致发光频率,光密度和窗格尺寸。

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