掺杂 Mn2+ 的 CsPbBr3 与 TiO2 系统组装的光生载流子动力学:锰掺杂含量的影响。

Luchao Du, Jie An, Tetsuro Katayama, Menghan Duan, XiaoPing Shi, Yunpeng Wang, Akihiro Furube
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引用次数: 0

摘要

近年来,全无机包晶材料以其优异的光物理性能成为新型薄膜太阳能电池的理想选择,并成为研究热点。研究光生载流子的超快动力学对进一步提高此类器件的性能具有重要意义。在这项工作中,我们利用飞秒瞬态吸收光谱技术,重点研究了不同 Mn2+ 掺杂含量的 CsPbBr3/TiO2 复合体系的瞬态动态过程。我们利用奇异值分解和全局拟合分析了瞬态吸收光谱,得到了三个分量,分别为热载流子冷却过程、电荷转移过程和电荷重组过程。我们发现,Mn2+ 的掺杂浓度对这三个过程都有影响。我们认为是以下两个因素造成的:一个是缺陷态密度,另一个是包晶带隙宽度。随着掺杂 Mn2+ 浓度的增加,电荷转移时间常数呈现出先增加后减小的趋势,最后达到一个转折点。这表明适量的 Mn2+ 掺杂能有效改善太阳能电池系统的光电性能。我们提出了一种可能的电荷转移机制模型,并进一步阐明了掺杂 Mn2+ 对 CsPbBr3/TiO2 太阳能电池系统界面电荷转移过程影响的微观机制。
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Photogenerated carrier dynamics of Mn2+ doped CsPbBr3 assembled with TiO2 systems: Effect of Mn doping content.
In recent years, all-inorganic perovskite materials have become an ideal choice for new thin film solar cells due to their excellent photophysical properties and have become a research hotspot. Studying the ultrafast dynamics of photo-generated carriers is of great significance for further improving the performance of such devices. In this work, we focus on the transient dynamic process of CsPbBr3/TiO2 composite systems with different Mn2+ doping contents using femtosecond transient absorption spectroscopy technology. We used singular value decomposition and global fitting to analyze the transient absorption spectra and obtained three components, which are classified as hot carrier cooling, charge transfer, and charge recombination processes, respectively. We found that the doping concentration of Mn2+ has an impact on all three processes. We think that the following two factors are responsible: one is the density of defect states and the other is the bandgap width of perovskite. As the concentration of doped Mn2+ increases, the charge transfer time constant shows a trend of initially increasing, followed by a subsequent decrease, reaching a turning point. This indicates that an appropriate amount of Mn2+ doping can effectively improve the photoelectric performance of solar cell systems. We proposed a possible charge transfer mechanism model and further elucidated the microscopic mechanism of the effect of Mn2+ doping on the interface charge transfer process of the CsPbBr3/TiO2 solar cell system.
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