Importance of spectrally invariant broadband attenuation of light in indoor photovoltaic characterization

APL Energy Pub Date : 2023-09-01 DOI:10.1063/5.0159289
Stefan Zeiske, P. Meredith, Ardalan Armin, Gregory Burwell
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Abstract

Indoor photovoltaic (IPV) devices are poised to make a significant contribution to the proliferation of the “Internet of Things” (IoT). For the accurate intercomparison of IPVs (and, hence, to advance the rational development of the technology), lighting conditions representative of those in typical indoor settings must be created reproducibly. As indoor lighting is invariably broadband, this will typically require the use of optical attenuation to achieve varying irradiance conditions at the device under test location. However, most forms of optical attenuation will suffer from some degree of spectral dispersion, creating sources of uncertainty for key figures of merit, such as power conversion efficiency. In this work, we examine the contribution of the mode of optical attenuation to the accurate characterization of IPV systems. We discuss requirements for broadband light source attenuation for the accurate characterization of photovoltaic devices under indoor illumination and consider the importance of using suitable reference devices for light intensity calibration. Furthermore, we experimentally verify attenuation methods typically used, including power control of the light source itself, use of neutral density filters, and advanced attenuation based on tandem prism attenuators. Finally, spectral shape alteration-induced uncertainties in performance parameter determination of photovoltaic cells under indoor illumination are quantified for three common broadband light attenuation methods, where we found ∼2%, ∼6%, and up to ∼15% ambiguity in photovoltaic device efficiency when using LED power control, prism attenuators, and neutral density filter-based broadband light attenuation, respectively.
光谱不变的宽带光衰减在室内光伏表征中的重要性
室内光伏(IPV)设备有望为“物联网”(IoT)的扩散做出重大贡献。为了对IPVs进行准确的相互比较(因此,为了促进该技术的合理发展),必须可再现地创建典型室内环境中具有代表性的照明条件。由于室内照明总是宽带,这通常需要使用光学衰减来实现测试位置下设备的不同辐照度条件。然而,大多数形式的光衰减都会受到一定程度的光谱色散的影响,从而为关键的性能指标(如功率转换效率)带来不确定性。在这项工作中,我们研究了光学衰减模式对IPV系统精确表征的贡献。我们讨论了宽带光源衰减对室内照明下光伏器件准确表征的要求,并考虑了使用合适的参考器件进行光强校准的重要性。此外,我们通过实验验证了通常使用的衰减方法,包括光源本身的功率控制,使用中性密度滤波器,以及基于串联棱镜衰减器的高级衰减。最后,通过三种常见的宽带光衰减方法,对室内照明下光伏电池性能参数确定中光谱形状变化引起的不确定性进行了量化,其中我们发现,当使用LED功率控制、棱镜衰减器和基于中性密度滤光片的宽带光衰减时,光伏器件效率的不确定性分别为~ 2%、~ 6%和高达~ 15%。
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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