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Carriers trapping and recombination: the role of defect physics in enhancing the open circuit voltage of metal halide perovskite solar cells

机译:载流子的俘获和复合:缺陷物理在增强金属卤化物钙钛矿太阳能电池开路电压中的作用

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摘要

One of the greatest attributes of metal halide perovskite solar cells is their surprisingly low loss in potential between bandgap and open-circuit voltage, despite the fact that they suffer from a non-negligible density of sub gap defect states. Here, we use a combination of transient and steady state photocurrent and absorption spectroscopy to show that CH3NH3PbI3 films exhibit a broad distribution of electron traps. We show that the trapped electrons recombine with free holes unexpectedly slowly, on microsecond time scales, relaxing the limit on obtainable Open-Circuit Voltage (Voc) under trap-mediated recombination conditions. We find that the observed VOCs in such perovskite solar cells can only be rationalized by considering the slow trap mediated recombination mechanism identified in this work. Our results suggest that existing processing routes may be good enough to enable open circuit voltages approaching 1.3 V in ideal devices with perfect contacts.
机译:金属卤化物钙钛矿太阳能电池的最大特性之一是它们的带隙和开路电压之间的电势损耗低得令人惊讶,尽管它们的子间隙缺陷状态密度不可忽略。在这里,我们使用瞬态和稳态光电流与吸收光谱的组合来显示CH3NH3PbI3膜表现出广泛的电子陷阱分布。我们表明,被捕获的电子在微秒的时间尺度上意外地与自由空穴复合,从而缓慢地释放了陷阱介导的复合条件下可获得的开路电压(Voc)的限制。我们发现只能通过考虑在这项工作中确定的慢陷阱介导的重组机制来合理化这种钙钛矿太阳能电池中观察到的VOC。我们的结果表明,现有工艺路线可能足以在具有理想触点的理想器件中实现接近1.3 V的开路电压。

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