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Elucidating the Trajectory of the Charge Transfer Mechanism and Recombination Process of Hybrid Perovskite Solar Cells

机译:阐明杂交钙石太阳能电池的电荷转移机理和重组过程的轨迹

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摘要

Perovskite-based solar cells (PSCs) have attracted attraction in the photovoltaic community since their inception in 2009. To optimize the performance of hybrid perovskite cells, a primary and crucial strategy is to unravel the dominant charge transport mechanisms and interfacial properties of the contact materials. This study focused on the charge transfer process and interfacial recombination within the n–i–p architecture of solar cell devices. The motivation for this paper was to investigate the impacts of recombination mechanisms that exist within the interface in order to quantify their effects on the cell performance and stability. To achieve our objectives, we firstly provided a rationale for the photoluminescence and UV-Vis measurements on perovskite thin film to allow for disentangling of different recombination pathways. Secondly, we used the ideality factor and impedance spectroscopy measurements to investigate the recombination mechanisms in the device. Our findings suggest that charge loss in PSCs is dependent mainly on the configuration of the cells and layer morphology, and hardly on the material preparation of the perovskite itself. This was deduced from individual analyses of the perovskite film and device, which suggest that major recombination most likely occur at the interface.
机译:基于Perovskite的太阳能电池(PSC)在2009年开始,在光伏社区中吸引了吸引力。为了优化杂交钙钛矿细胞的性能,主要和关键的策略是解开接触材料的主要电荷输送机制和界面性能。该研究专注于太阳能电池装置的N-I-P架构内的电荷转移过程和界面重组。本文的动机是探讨界面内存中存在的重组机制的影响,以定量它们对细胞性能和稳定性的影响。为实现我们的目标,我们首先为钙钛矿薄膜的光致发光和UV-Vis测量提供了理由,以允许解解不同的重组途径。其次,我们使用了理想因子和阻抗光谱测量来研究装置中的重组机制。我们的研究结果表明,PSCs中的电荷损失主要是依赖于细胞和层形态的配置,几乎没有对钙钛矿本身的材料制备。这是从钙钛矿薄膜和装置的个体分析中推断出来,这表明最可能在界面发生重组。

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