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Perovskite Solar Cells go Outdoors: Field Testing and Temperature Effects on Energy Yield

机译:佩罗夫斯基钛矿太阳能电池户外:现场测试和对能源产量的温度效应

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摘要

Perovskite solar cells (PSC) have shown that under laboratory conditions they can compete with established photovoltaic technologies. However, controlled laboratory measurements usually performed do not fully resemble operational conditions and field testing outdoors, with day-night cycles, changing irradiance and temperature. In this contribution, the performance of PSCs in the rooftop field test, exposed to real weather conditions is evaluated. The 1 cm(2) single-junction devices, with an initial average power conversion efficiency of 18.5% are tracked outdoors in maximum power point over several weeks. In parallel, irradiance and air temperature are recorded, allowing us to correlate outside factors with generated power. To get more insight into outdoor device performance, a comprehensive set of laboratory measurements under different light intensities (10% to 120% of AM1.5) and temperatures is performed. From these results, a low power temperature coefficient of -0.17% K-1 is extracted in the temperature range between 25 and 85 degrees C. By incorporating these temperature- and light-dependent PV parameters into the energy yield model, it is possible to correctly predict the generated energy of the devices, thus validating the energy yield model. In addition, degradation of the tested devices can be tracked precisely from the difference between measured and modelled power.
机译:Perovskite太阳能电池(PSC)表明,在实验室条件下,它们可以与建立的光伏技术竞争。然而,通常进行的受控实验室测量在夜间循环,改变辐照度和温度时,通常进行的受控实验室测量并没有完全类似的操作条件和现场测试。在这一贡献中,评估了PSC在屋顶现场测试中的性能,暴露于真实天气条件。 1厘米(2)个单结装置,初始平均功率转换效率为18.5%,在几周内以最大功率点在户外跟踪。并行地,记录辐照度和空气温度,使我们能够将外部因素与产生的电力相关联。为了获得更多地深入了解户外设备性能,在不同光强度下进行全面的实验室测量(10%至120%的AM1.5)和温度。从这些结果中,通过将这些温度和光依赖性的PV参数掺入能量产率模型中,在25至85摄氏度的温度范围内提取-0.17%K-1的低功率温度系数。正确地预测器件的产生能量,从而验证能量屈服模型。另外,可以精确地从测量和建模功率之间的差异来追踪测试装置的劣化。

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  • 来源
    《Advanced energy materials》 |2020年第25期|2000454.1-2000454.11|共11页
  • 作者单位

    Helmholtz Zentrum Berlin Young Investigator Grp Perovskite Tandem Solar Ce Kekulestr 5 D-12489 Berlin Germany|Univ Ljubljana Fac Elect Engn Trzaska 25 Ljubljana 1000 Slovenia;

    Univ Ljubljana Fac Elect Engn Trzaska 25 Ljubljana 1000 Slovenia;

    Univ Ljubljana Fac Elect Engn Trzaska 25 Ljubljana 1000 Slovenia;

    Helmholtz Zentrum Berlin Young Investigator Grp Perovskite Tandem Solar Ce Kekulestr 5 D-12489 Berlin Germany;

    Univ Ljubljana Fac Elect Engn Trzaska 25 Ljubljana 1000 Slovenia;

    Univ Ljubljana Fac Elect Engn Trzaska 25 Ljubljana 1000 Slovenia;

    Kaunas Univ Technol Dept Organ Chem Radvilenu Pl 19 LT-50254 Kaunas Lithuania;

    Kaunas Univ Technol Dept Organ Chem Radvilenu Pl 19 LT-50254 Kaunas Lithuania;

    Univ Ljubljana Fac Elect Engn Trzaska 25 Ljubljana 1000 Slovenia;

    Helmholtz Zentrum Berlin Young Investigator Grp Perovskite Tandem Solar Ce Kekulestr 5 D-12489 Berlin Germany|Tech Univ Berlin Fac Elect Engn & Comp Sci 4 Marchstra 23 D-10587 Berlin Germany;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    energy yields; field tests; outdoor measurements; perovskite solar cells; temperature coefficients;

    机译:能源产量;现场测试;户外测量;钙钛矿太阳能电池;温度系数;

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