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Using Phase Effects to Understand Measurements of the Quantum Efficiency and Related Luminescent Coupling in a Multijunction Solar Cell

机译:使用相位效应来理解多结太阳能电池中量子效率和相关发光耦合的测量

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We analyze the quantum efficiency measurement of a series-connected multijunction solar cell by modeling the cell as an ac resistive–capacitive circuit and studying the complex current as a function of the light biasing. The photocurrent induced by directly absorbed photons is modeled as an independent current source, whereas the luminescent coupling current from higher bandgap to lower bandgap subcells is modeled as a dependent current source in the bottom subcell. We derive expressions for the equivalent impedance and the complex current in measurements of the top and bottom subcells of a two-junction device. High light biasing of the nonlimiting cell drives the magnitude and phase shift of the current toward well-defined limits, but insufficient light biasing yields a composite response that is not fully characteristic of either subcell. We recommend that the experimenter always monitor the phase shift of the signal for signs of insufficient light biasing, and to help identify genuine luminescent coupling effects.
机译:通过将电池建模为交流电阻电容电路,并研究作为光偏置函数的复电流,我们分析了串联多结太阳能电池的量子效率测量。由直接吸收的光子感应的光电流被建模为独立的电流源,而从较高带隙子流向较低带隙子电池的发光耦合电流被模型化为底部子电池中的依赖电流源。我们推导了两结器件顶部和底部子电池的等效阻抗和复电流的表达式。非限制性电池的高光偏置​​将电流的大小和相移推向界限分明的极限,但是光偏置不足会导致复合响应,而这并不是每个子电池的完全特征。我们建议实验人员始终监视信号的相移,以发现光偏置不足的迹象,并帮助确定真正的发光耦合效应。

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