Characterization of silicon solar cells by means of their luminescence under high frequency sinusoidal excitations

N. Azkona, F. Recart, P. Rodríguez, J. Jimeno
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Abstract

The dynamic response of solar cells is more complex to be analyzed than the quasi-steady-state (QSS) case because signals are faster and weaker and the analysis is more complex, sometimes challenging, and it requires some corrections in order to reconstruct the static characteristics. As a result, QSS measurements are preferred when measuring I-V curves, sunsVoc characteristics or for luminescence imaging, when integrating times in the range of seconds are used. But dynamic measurements, which are more complex, contain more information than QSS about some internal characteristics that are otherwise hidden. Following this idea, this paper analyses the behavior of the excess carrier concentration in a cell and, consequently, its Voc and PL responses, in open circuit conditions. The excitation is composed of a biasing light that drives the cell to a proper injection-level and a superposed small-signal sinusoidal illumination. The theoretical analysis is based in the classic charge-control model of a pn junction in dynamic conditions, and the small signal decomposition. The data are validated with PC1D simulations for the different scenarios and, in some cases, with experimental measurements. This work proves the existence of a cut-off frequency that is related to the transit time of the device (which is a function of the geometry and the minority carrier diffusivity) and to the effective (recombination) lifetime of the device. Applying excitations of different frequencies and intensities the device can be characterized on by measuring the phase-shift and amplitude dependence on the frequency.
硅太阳电池在高频正弦激励下的发光特性
太阳能电池的动态响应分析比准稳态(QSS)情况更复杂,因为信号更快、更弱,分析更复杂,有时具有挑战性,并且需要一些修正才能重建静态特性。因此,在测量I-V曲线,太阳voc特性或发光成像时,当使用秒范围内的积分时间时,QSS测量是首选。但是动态测量更为复杂,它包含了比QSS更多的关于一些内部特征的信息,而这些特征本来是隐藏的。根据这一思路,本文分析了电池中过量载流子浓度的行为,从而分析了开路条件下电池的Voc和PL响应。激发由驱动细胞到适当注射水平的偏置光和叠加的小信号正弦照明组成。理论分析基于动态条件下pn结的经典电荷控制模型和小信号分解。这些数据通过不同场景的PC1D模拟进行了验证,在某些情况下,还进行了实验测量。这项工作证明了截止频率的存在,该截止频率与器件的传输时间(这是几何形状和少数载流子扩散率的函数)和器件的有效(复合)寿命有关。施加不同频率和强度的激励,可以通过测量相移和振幅对频率的依赖来表征该器件。
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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