Luminous Transmittance and Color Rendering Characteristics of Evaporated Chalcopyrite Thin Films for Semitransparent Photovoltaics

Solids Pub Date : 2024-02-08 DOI:10.3390/solids5010007
Cecilia Guillén
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Abstract

The luminous transmittance and the color rendering index of daylight through semitransparent photovoltaic glazing are essential parameters for visual comfort indoors, and they must be considered for different absorber materials that were traditionally developed for opaque solar cells, such as those of the chalcopyrite type. With this aim, various chalcopyrite compounds (CuInSe2, CuInS2 and CuGaS2) were prepared by means of evaporation and then measured to obtain their optical absorption spectra. These experimental data are used here to calculate the solar absorptance (αS), luminous transmittance (τL) and color rendering index (Ra) as a function of the chalcopyrite film thickness. The comparative analysis of the different factors indicates that 70 nm thick CuInSe2 is optimal to guarantee excellent visual comfort (τL = 50% and Ra = 93%) while absorbing as much solar irradiance (αS = 37%) as 130 nm thick CuInS2 or 900 nm thick CuGaS2. The second option (130 nm thick CuInS2) is also considered good (τL = 40% and Ra = 80%), but for CuGaS2, the thickness should be kept below 250 nm in order to obtain a suitable color rendering Ra ≥ 60%.
半透明光伏用蒸发黄铜矿薄膜的透光率和显色特性
日光透过半透明光伏玻璃的透光率和显色指数是室内视觉舒适度的重要参数,必须考虑传统上为不透明太阳能电池开发的不同吸收材料,如黄铜矿类型的吸收材料。为此,我们通过蒸发法制备了各种黄铜矿化合物(CuInSe2、CuInS2 和 CuGaS2),然后测量了它们的光学吸收光谱。本文利用这些实验数据计算了太阳吸收率 (αS)、透光率 (τL) 和显色指数 (Ra) 与黄铜矿薄膜厚度的函数关系。对不同因素的比较分析表明,70 nm 厚的 CuInSe2 与 130 nm 厚的 CuInS2 或 900 nm 厚的 CuGaS2 相比,在吸收同样多的太阳辐照度(αS = 37%)的同时,还能保证极佳的视觉舒适度(τL = 50%,Ra = 93%)。第二种方案(130 nm 厚的 CuInS2)也被认为很好(τL = 40%,Ra = 80%),但对于 CuGaS2,厚度应保持在 250 nm 以下,以获得合适的显色性 Ra ≥ 60%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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CiteScore
3.40
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