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首页> 外文期刊>Journal of materials science >Improved efficiency of silicon polycrystalline commercial photovoltaic cells coated with a co-doped Er~(3+)/Yb~(3+) silica matrix
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Improved efficiency of silicon polycrystalline commercial photovoltaic cells coated with a co-doped Er~(3+)/Yb~(3+) silica matrix

机译:掺有Er〜(3 +)/ Yb〜(3+)二氧化硅基质的硅多晶商业光伏电池效率的提高

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摘要

Electrical energy produced by photovoltaic cells is extremely interesting because it originates from a clean and renewable source. However, cell efficiency is low due to factors such as temperature, solar spectrum radiation intensity, and incomplete use of all solar radiation wavelengths reaching the Earth (e.g., infrared radiation). Solar radiation reaching the Earth's surface has ultraviolet, visible, and infrared components, which has motivated us to coat commercial polycrystalline silicon cells purchased from Panda Energy Solar Importation LTDA-ME with a silica matrix obtained by the sol-gel process and co-doped with Er3+/Yb3+ lanthanide ions, to promote upconversion. The solar cells prepared herein were coated with thin films via the dip-coating technique and were dried at two different temperatures. The resulting coated photovoltaic cells were characterized by photoluminescence and electrical measurements; voltage, current, and electrical power were considered. Upon excitation at 980 nm, typical Er3+ emission bands emerged in the green (546 nm) and red (650 nm) regions. The emission band at 546 nm was more intense, indicating that the mechanism involved excitation by two photons, and that intensity depended on laser power. Electrical measurements showed that cell efficiency increased when the cell was covered with the thin film.
机译:光伏电池产生的电能非常有趣,因为它源自清洁和可再生的能源。然而,由于诸如温度,太阳光谱辐射强度以及到达地球的所有太阳辐射波长(例如,红外辐射)的使用不充分等因素,电池效率低。到达地球表面的太阳辐射具有紫外线,可见光和红外线成分,这促使我们用从溶胶-凝胶法获得的并共掺杂有二氧化硅的基质涂覆从Panda Energy Solar Importation LTDA-ME购买的商业多晶硅电池。 Er3 + / Yb3 +镧系离子,以促进上转换。通过浸涂技术将本文制备的太阳能电池涂有薄膜,并在两个不同的温度下干燥。通过光致发光和电学测量来表征所得的涂覆的光伏电池。考虑了电压,电流和电功率。在980 nm激发后,典型的Er3 +发射带出现在绿色(546 nm)和红色(650 nm)区域。 546 nm处的发射带更强,表明该机理涉及两个光子的激发,并且强度取决于激光功率。电学测量表明,当电池被薄膜覆盖时,电池效率提高。

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