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Thermal effect on the efficiency and stability of luminescent solar concentrators based on colloidal quantum dots

机译:基于胶体量子点的发光太阳能聚光器效率和稳定性的热效应

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摘要

Luminescent solar concentrators (LSCs) are large-area sunlight collectors, consisting of a waveguide embedded with fluorophores. LSCs could reduce the use of expensive silicon solar cells, thus decreasing the cost of electricity. Although great efforts have been made for fabricating high efficiency large-area LSCs, there is still a lack of knowledge of the temperature effect on the performance of the LSCs based on colloidal quantum dots (QDs) because the LSCs need to be operated in outdoor conditions. In this work, we investigated the thermal effect on the performance of the LSCs based on colloidal QDs upon sunlight irradiation under different temperatures (10-40 degrees C). The optical properties (e.g. quantum yield and optical efficiency) of the LSCs are strongly dependent on the operating temperature. With increasing operating temperature, the quantum yield and optical efficiency decrease significantly. Among three types of configuration, the LSC based on thin-film QDs coated on glass has the lowest temperature increase under operation, due to the higher thermal conductivity of the glass compared to the polymer matrix. Considering the real operating conditions of the LSCs, the glass-based LSCs have promising potential for future high-efficiency LSC-PV systems.
机译:发光太阳能聚光器(LSC)是大面积的太阳能收集器,由嵌入荧光团的波导组成。LSC可以减少昂贵硅太阳能电池的使用,从而降低电力成本。尽管已经为制备高效大面积LSC做出了巨大的努力,但由于LSC需要在室外条件下工作,因此对于温度对基于胶体量子点(QD)的LSC性能的影响仍然缺乏了解。在这项工作中,我们研究了在不同温度(10-40摄氏度)下太阳光照射下,基于胶体量子点的LSC的热效应。LSC的光学特性(例如量子产率和光学效率)强烈依赖于工作温度。随着工作温度的升高,量子产率和光学效率显著降低。在三种配置中,基于薄膜量子点的LSC涂覆在玻璃上,由于与聚合物基体相比,玻璃具有更高的热导率,因此其在运行时的温升最低。考虑到LSC的实际运行条件,基于玻璃的LSC在未来高效LSC-PV系统中具有很大的潜力。

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