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Comparison of Electron and Hole Mobilities in Multiple-Quantum-Well Solar Cells Using a Time-of-Flight Technique

机译:使用飞行时间技术比较多量子阱太阳能电池中的电子和空穴迁移率

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摘要

Understanding of transport dynamics of both electrons and holes in quantum-structure solar cells is essential for their structure design and performance enhancement. By applying our proposed carrier time-of-flight technique on p-on-n and n-on-p configurations, we can separately evaluate electron and hole transport across quantum structures inserted in the i-region of solar cells. Electron and hole behaviors in two sets of InGaAs/GaAsP multiple-quantum-well (MQW) solar cells with different potential barrier heights are investigated in this study. Both types of carriers in InGaAs/GaAsP MQWs show faster averaged velocities by an order of magnitude than those in InGaAs/GaAsP MQWs, which have higher potential barriers. Within the same MQW structure, the measured values of electron and hole averaged velocities are very close to each other. This results in the same order of effective mobilities of electrons and holes and the similar tendency of cell performance in p-on-n and n-on-p MQW solar cells. Holes in high-barrier InGaAs/GaAsP MQWs show nonlinear mobility, suggesting that a careful design of high-barrier MQWs is required to avoid the hole bottleneck and enhance charge carrier collection.
机译:理解量子结构太阳能电池中电子和空穴的传输动力学对于其结构设计和性能提高至关重要。通过将我们提出的载流子飞行时间技术应用于p-on-n和n-on-p构型,我们可以分别评估插入到太阳能电池i区域中的量子结构上的电子和空穴传输。本文研究了两组势垒高度不同的InGaAs / GaAsP多量子阱(MQW)太阳能电池中的电子和空穴行为。 InGaAs / GaAsP MQW中的两种载流子均比具有较高势垒的InGaAs / GaAsP MQW中的载流子快一个数量级。在相同的MQW结构中,电子和空穴平均速度的测量值非常接近。这在p-on-n和n-on-p MQW太阳能电池中产生了相同顺序的电子和空穴有效迁移率,并且具有相似的电池性能趋势。高势垒InGaAs / GaAsP MQW中的空穴显示出非线性迁移率,这表明需要仔细设计高势垒MQW来避免空穴瓶颈并增强电荷载流子的收集。

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