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首页> 外文期刊>Journal of Computational Electronics >Numerical modeling of thermal behavior and structural optimization of a-Si:H solar cells at high temperatures
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Numerical modeling of thermal behavior and structural optimization of a-Si:H solar cells at high temperatures

机译:a-Si:H太阳能电池高温行为的数值模拟和结构优化

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摘要

A large amount of solar energy is collected in tropical zones of the earth, where the temperature of photo-voltaic (PV) modules can exceed to more than . At such high temperatures, the performance of most solar cells is greatly degraded, since the performance parameters of the cells are mainly decreasing functions of temperature. Despite the high importance of solar energy conversion in hot places, little attention has been paid to the investigation of high-temperature effects on the conversion efficiency of the cells. In this paper, the performance of a wide selection of solar cells of different structures made from different materials is analyzed at high temperatures in the range of 50-75 , which is different from the standard test condition usually used in the assessment of solar cells. An accurate model for thermal behavior of the cell is suggested, in which almost all important parameters affecting each layer on the cell's thermal behavior are included, such as mobility, thermal velocity of carriers, bandgap, Urbach energy of band tails, electron affinity, relative permittivity, and effective density of states in the valence and conduction bands. The effects of possible arrangements of different layers and their materials and structural parameters, as well as light-induced defects and sunlight intensity, are also studied in the analysis. A relation is proposed between the optimal thickness of the absorber layer and the working temperature. Finally, an optimal structure of the solar cell at high temperatures is suggested.
机译:在地球的热带地区收集了大量的太阳能,在这些地区,光伏(PV)模块的温度可能会超过。在这样的高温下,大多数太阳能电池的性能大大降低,因为电池的性能参数主要是温度的下降函数。尽管在热的地方进行太阳能转换非常重要,但很少有人研究高温对电池转换效率的影响。在本文中,分析了由多种不同材料制成的各种结构的太阳能电池在50-75的高温下的性能,这与通常用于评估太阳能电池的标准测试条件不同。提出了一种精确的电池热行为模型,其中包括了影响电池热行为每一层的几乎所有重要参数,例如迁移率,载流子的热速度,带隙,带尾的Urbach能量,电子亲和力,相对介电常数,以及价带和导带中的状态有效密度。在分析中还研究了不同层的可能排列及其材料和结构参数的影响,以及光致缺陷和日照强度的影响。提出了吸收层的最佳厚度与工作温度之间的关系。最后,提出了高温下太阳能电池的最佳结构。

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