Department of Chemistry and Centre for Processable Electronics, Imperial College London, London W12 0BZ, United Kingdom.
Department of Materials Science and Engineering, Stanford University, Stanford, California 94305, United States.
ACS Nano. 2023 Apr 11;17(7):6638-6648. doi: 10.1021/acsnano.2c12373. Epub 2023 Mar 20.
The relaxation of the above-gap ("hot") carriers in lead halide perovskites (LHPs) is important for applications in photovoltaics and offers insights into carrier-carrier and carrier-phonon interactions. However, the role of quantum confinement in the hot carrier dynamics of nanosystems is still disputed. Here, we devise a single approach, ultrafast pump-push-probe spectroscopy, to study carrier cooling in six different size-controlled LHP nanomaterials. In cuboidal nanocrystals, we observe only a weak size effect on the cooling dynamics. In contrast, two-dimensional systems show suppression of the hot phonon bottleneck effect common in bulk perovskites. The proposed kinetic model describes the intrinsic and density-dependent cooling times accurately in all studied perovskite systems using only carrier-carrier, carrier-phonon, and excitonic coupling constants. This highlights the impact of exciton formation on carrier cooling and promotes dimensional confinement as a tool for engineering carrier-phonon and carrier-carrier interactions in LHP optoelectronic materials.
卤铅钙钛矿(LHPs)中导带(“热”)载流子弛豫对于光伏应用很重要,同时也为载流子-载流子和载流子-声子相互作用提供了深入的理解。然而,量子限域在纳米系统中热载流子动力学中的作用仍存在争议。在这里,我们设计了一种单一的方法,超快泵浦推动探针光谱学,来研究六种不同尺寸控制的 LHPs 纳米材料中的载流子冷却。在立方纳米晶体中,我们仅观察到冷却动力学上的微弱尺寸效应。相比之下,二维体系抑制了在体相钙钛矿中常见的热声子瓶颈效应。所提出的动力学模型使用仅载流子-载流子、载流子-声子和激子耦合常数,准确描述了所有研究的钙钛矿体系中的本征和密度相关的冷却时间。这突出了激子形成对载流子冷却的影响,并促进了维度限制作为工程化 LHPs 光电材料中载流子-声子和载流子-载流子相互作用的工具。