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Picosecond multi-hole transfer and microsecond charge-separated states at the perovskite nanocrystal/tetracene interface

机译:钙钛矿纳米晶体/并四苯界面处的皮秒多孔传输和微秒电荷分离态

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摘要

Hole transfer (HT) is often kinetically sluggish compared to electron transfer (ET), which increases recombination losses and thus limits the efficiency of many energy conversion devices such as light-emitting diodes, solar cells and solar-fuel production systems. Recently introduced lead halide perovskites and their nanocrystals (NCs) have emerged as an important class of energy conversion materials. Here we report that tetracene molecules can enable ultrafast and efficient HT from perovskite NCs. Transient absorption measurements reveal that HT occurs in 7.6 ± 0.2 ps, and the charge-separated states are extremely long-lived (5.1 ± 0.3 μs). Such exceptional charge separation properties are leveraged to demonstrate the dissociation of up to 5.6 excitons per NC by multi-hole transfer for the first time. These results not only suggest that tetracenes are an effective hole-extracting material for perovskite devices, but also have important implications for using perovskite NCs as sensitizers and tetracenes as redox mediators to drive single and even multi-electron photochemical reactions.
机译:与电子转移(ET)相比,空穴转移(HT)通常在动力学上比较缓慢,这会增加复合损失,从而限制了许多能量转换设备(如发光二极管,太阳能电池和太阳能燃料生产系统)的效率。最近引入的卤化钙钛矿和它们的纳米晶体(NCs)已经成为一类重要的能量转换材料。在这里,我们报告并四苯分子可以从钙钛矿NCs中实现超快和高效的HT。瞬态吸收测量表明,HT以7.6±0.2 ps的速率发生,并且电荷分离状态的寿命极长(5.1±0.3μs)。利用这种出色的电荷分离特性,首次通过多孔转移证明了每个NC最多可分离5.6个激子。这些结果不仅表明四碳烯是钙钛矿器件的一种有效的空穴提取材料,而且对于使用钙钛矿NCs作为敏化剂和四碳烯作为氧化还原介质来驱动单电子甚至多电子光化学反应具有重要意义。

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