论文标题
直接观察在甲基铅钙岩纳米晶体中激子 - 棕榈形成期间超快晶格失真
Direct observation of ultrafast lattice distortions during exciton-polaron formation in lead-halide perovskite nanocrystals
论文作者
论文摘要
慢速载液冷却钙钛矿中慢速载体冷却的微观起源仍在争论中,并且对应用具有直接影响。慢速载体冷却归因于高兴奋的载体密度(> 10 $^{18} $ cm $^{ - 3} $)的polaron形成或热孔瓶颈效应。这些效应不能仅仅与光学实验明确脱离。但是,可以通过直接观察超快晶格动力学来区分它们,因为这些效果有望产生定性不同的指纹。为此,我们采用了飞秒电子衍射,并直接测量了弱限制的CSPBBR $ _3 $纳米晶体的子皮秒晶格动力学,距离差距超过差异。数据揭示了在时间尺度上出现的光引起的结构变形,该时间尺度在380 fs至1200 fs之间变化,具体取决于激发的通量。我们将这些动力学归因于激子 - 棕榈对晶格的影响,而高为较高的动力学在较慢的热载体冷却下,这会减慢激子的建立。进一步的分析和仿真表明,失真与[PBBR $ _3 $] $^{ - } $八面体离子笼的动作一致,并且与数据获得了最接近的数据,以延长PB-BR债券。我们的工作表明了对子秒时间尺度上的晶格动力学的直接研究可以区分竞争场景,从而阐明了铅甲基钙钛矿中慢速载体冷却的起源。
The microscopic origin of slow carrier cooling in lead-halide perovskites remains debated, and has direct implications for applications. Slow carrier cooling has been attributed to either polaron formation or a hot-phonon bottleneck effect at high excited carrier densities (> 10$^{18}$ cm$^{-3}$). These effects cannot be unambiguously disentangled from optical experiments alone. However, they can be distinguished by direct observations of ultrafast lattice dynamics, as these effects are expected to create qualitatively distinct fingerprints. To this end, we employ femtosecond electron diffraction and directly measure the sub-picosecond lattice dynamics of weakly confined CsPbBr$_3$ nanocrystals following above-gap photo-excitation. The data reveal a light-induced structural distortion appearing on a time scale varying between 380 fs to 1200 fs depending on the excitation fluence. We attribute these dynamics to the effect of exciton-polarons on the lattice, and the slower dynamics at high fluences to slower hot carrier cooling, which slows down the establishment of the exciton-polaron population. Further analysis and simulations show that the distortion is consistent with motions of the [PbBr$_3$]$^{-}$ octahedral ionic cage, and closest agreement with the data is obtained for Pb-Br bond lengthening. Our work demonstrates how direct studies of lattice dynamics on the sub-picosecond timescale can discriminate between competing scenarios, thereby shedding light on the origin of slow carrier cooling in lead-halide perovskites.