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首页> 外文期刊>ACS nano >Unraveling the Radiative Pathways of Hot Carriers upon Intense Photoexcitation of Lead Halide Perovskite Nanocrystals
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Unraveling the Radiative Pathways of Hot Carriers upon Intense Photoexcitation of Lead Halide Perovskite Nanocrystals

机译:在激烈的卤化铅钙钛矿纳米晶体中释放热载体的辐射途径

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The slowdown of carrier cooling in lead halide perovskites (LHP) may allow the realization of efficient hot carrier solar cells. Much of the current effort focuses on the understanding of the mechanisms that retard the carrier relaxation, while proof-of-principle demonstrations of hot carrier harvesting have started to emerge. Less attention has been placed on the impact that the energy and momentum relaxation slowdown imparts on the spontaneous and stimulated light-emission process. LHP nanocrystals (NCs) provide an ideal testing ground for such studies as they exhibit bright emission and high optical gain, while the carrier cooling bottleneck is further pronounced compared to their bulk analogues due to confinement. Herein, the luminescent properties of CsPbBr3, FAPbBr(3), and FAPbI(3) NCs in the strong photoexcitation regime are investigated. In the former two NC systems, amplified spontaneous emission is found to dominate over the radiative recombination at average carrier occupancy per nanocrystal larger than 5-10. On the other hand, under the same photoexcitation conditions in the FAPbI(3) NCs, a longer lived population of hot carriers results in a competition between hot luminescence, stimulated emission, and defect recombination. The dynamic interplay between the aforementioned three emissive channels appears to be influenced by various experimental and material parameters that include temperature, material purity, film morphology, and excitation pulse width and wavelength.
机译:铅卤化物钙酸盐(LHP)中载体冷却的放缓可以允许实现有效的热载体太阳能电池。目前的大部分努力侧重于理解延缓载体放松的机制,而热载流量收获的原则示威性已经开始出现。对能量和动量松弛放缓的影响较少关注赋予自发性和刺激的发光过程。 LHP纳米晶体(NCS)为这些研究提供了理想的测试理由,因为它们表现出鲜艳的发射和高光学增益,而载体冷却瓶颈与由于限制引起的批量类似物相比,进一步发声。在此,研究了CSPBBR3,FAPBBR(3)和FAPBI(3)NCS的发光性能在强烈的光透明度制度中。在前两种NC系统中,发现扩增的自发排放在每个纳米晶体大于5-10的平均载体占用率的辐射重组上占据辐射重组。另一方面,在FAPBI(3)NC的相同的相同的光筛选条件下,较长的热载体群体导致热发光,刺激发射和缺陷重组之间的竞争。上述三个发射通道之间的动态相互作用似乎受到各种实验和材料参数的影响,包括温度,材料纯度,薄膜形态和激发脉冲宽度和波长。

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