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首页> 外文期刊>ACS applied materials & interfaces >Origin of Extended UV Stability of 2D Atomic Layer Titania-Based Perovskite Solar Cells Unveiled by Ultrafast Spectroscopy
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Origin of Extended UV Stability of 2D Atomic Layer Titania-Based Perovskite Solar Cells Unveiled by Ultrafast Spectroscopy

机译:由超速率光谱推出的2D原子层的延长紫外稳定性的悬垂性稳定性的起源

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The inherent instability of UV-induced degradation in TiO2-based perovskite solar cells was largely improved by replacing the anatase-phase compact TiO2 layer with an atomic sheet transport layer (ASTL) of two-dimensional (2D) Ti1-delta O2. The vital role of microscopic carrier dynamics that govern the UV stability of perovskite solar cells was comprehensively examined in this work by performing time-resolved pump-probe spectroscopy. In conventional perovskite solar cells, the presence of a UV-active oxygen vacancy in compact TiO2 prohibits current generation by heavily trapping electrons after UV degradation. Conversely, the dominant vacancy type in the 2D Ti1-delta O2 ASTL is a titanium vacancy, which is a shallow acceptor and is not UV-sensitive. Therefore, it significantly suppresses carrier recombination and extends UV stability in perovskite solar cells with a 2D Ti1-delta O2 ASTL. Other carrier dynamics, such as electron diffusion, electron injection, and hot hole transfer processes, were found to be less affected by UV irradiation. Quantitative pump-probe data clearly show a correlation between the carrier dynamics and UV aging of perovskite solar cells, thus providing a profound insight into the factors driving UV-induced degradation in perovskite solar cells and the origin of its performance.
机译:通过用二维(2D)Ti1-Delta O2的原子片传输层(ASTL)替换锐钛矿相 - 相形的TiO2层,大量改善了TiO2的钙钛矿太阳能电池中UV诱导的降解的固有不稳定性。通过执行时间分辨的泵探针光谱,在这项工作中全面地检查了管理钙钛矿太阳能电池UV稳定性的显微载波动力学的重要作用。在常规的钙钛矿太阳能电池中,Compact TiO 2中的UV-活性氧空位的存在禁止通过紫外线降解后通过重捕集电子产生电流。相反,2D Ti1-Delta O2 ASTL中的主要空位类型是钛空位,是浅受体,并且不是紫外线敏感的。因此,它显着抑制载体重组,并在钙钛矿太阳能电池中延伸紫外线稳定性,具有2D Ti1-Delta O2 ASTL。发现其他载体动力学,例如电子扩散,电子注入和热空穴转移过程,受UV照射的影响较小。定量泵探针数据清楚地表明了普罗夫斯基钛矿太阳能电池的载体动力学和UV老化之间的相关性,从而深入了解驱动紫外线太阳能电池和其性能的起源的引发紫外引起的降解的因素。

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