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体相和纳米晶卤化铅钙钛矿带内载流子弛豫的动力学建模。

Kinetic modelling of intraband carrier relaxation in bulk and nanocrystalline lead-halide perovskites.

作者信息

Hopper Thomas R, Jeong Ahhyun, Gorodetsky Andrei A, Krieg Franziska, Bodnarchuk Maryna I, Huang Xiaokun, Lovrincic Robert, Kovalenko Maksym V, Bakulin Artem A

机构信息

Ultrafast Optoelectronics Group, Department of Chemistry, Imperial College London, London W12 0BZ, UK.

出版信息

Phys Chem Chem Phys. 2020 Aug 21;22(31):17605-17611. doi: 10.1039/d0cp01599g. Epub 2020 Jul 28.

Abstract

The relaxation of high-energy "hot" carriers in semiconductors is known to involve the redistribution of energy between hot and cold carriers, as well as the transfer of energy from hot carriers to phonons. Over the past few years, these two processes have been identified in lead-halide perovskites (LHPs) using ultrafast pump-probe experiments, but their interplay is not fully understood. Here we present a practical and intuitive kinetic model that accounts for the effects of both hot and cold carriers on carrier relaxation in LHPs. We apply this model to describe the dynamics of hot carriers in bulk and nanocrystalline CsPbBr as observed by multi-pulse "pump-push-probe" spectroscopy. The model captures the slowing of the relaxation dynamics in the materials as the number of hot carriers increases, which has previously been explained by a "hot-phonon bottleneck" mechanism. The model also correctly predicts an acceleration of the relaxation kinetics as the number of cold carriers in the samples is increased. Using a series of natural approximations, we reduce our model to a simple form containing terms for the carrier-carrier and carrier-phonon interactions. The model can be instrumental for evaluating the details of carrier relaxation and carrier-phonon couplings in LHPs and other soft optoelectronic materials.

摘要

众所周知,半导体中高能“热”载流子的弛豫涉及热载流子与冷载流子之间的能量重新分布,以及热载流子向声子的能量转移。在过去几年中,通过超快泵浦 - 探测实验已在卤化铅钙钛矿(LHP)中识别出这两个过程,但它们之间的相互作用尚未完全理解。在此,我们提出了一个实用且直观的动力学模型,该模型考虑了热载流子和冷载流子对LHP中载流子弛豫的影响。我们应用此模型来描述通过多脉冲“泵浦 - 推 - 探测”光谱观察到的块状和纳米晶CsPbBr中热载流子的动力学。该模型捕捉到了随着热载流子数量增加材料中弛豫动力学的减慢,这一点此前已由“热声子瓶颈”机制解释。该模型还正确预测了随着样品中冷载流子数量增加弛豫动力学的加速。通过一系列自然近似,我们将模型简化为一种简单形式,其中包含载流子 - 载流子和载流子 - 声子相互作用的项。该模型有助于评估LHP和其他软光电子材料中载流子弛豫及载流子 - 声子耦合的细节。

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