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单晶有机金属卤化物纳米管组件中激子-激子湮灭的直接证据。

Direct Evidence of Exciton-Exciton Annihilation in Single-Crystalline Organic Metal Halide Nanotube Assemblies.

作者信息

Ma Ying-Zhong, Lin Haoran, Du Mao-Hua, Doughty Benjamin, Ma Biwu

机构信息

Chemical Sciences Division , Oak Ridge National Laboratory , Oak Ridge , Tennessee 37831 , United States.

Department of Chemical and Biomedical Engineering , FAMU-FSU College of Engineering , Tallahassee , Florida 32310 , United States.

出版信息

J Phys Chem Lett. 2018 May 3;9(9):2164-2169. doi: 10.1021/acs.jpclett.8b00761. Epub 2018 Apr 13.

Abstract

Excitons in low-dimensional organic-inorganic metal halide hybrid structures are commonly thought to undergo rapid self-trapping following creation due to strong quantum confinement and exciton-phonon interaction. Here we report an experimental study probing the dynamics of these self-trapped excitons in the single-crystalline bulk assemblies of 1D organic metal halide nanotubes, (CHN)PbBr. Through time-resolved photoluminescence (PL) measurements at different excitation intensities, we observed a marked variation in the PL decay behavior that is manifested by an accelerated decay rate with increasing excitation fluence. Our results offer direct evidence of the occurrence of an exciton-exciton annihilation process, a nonlinear relaxation phenomenon that takes place only when some of the self-trapped excitons become mobile and can approach either each other or those trapped excitons. We further identify a fast and dominant PL decay component with a lifetime of ∼2 ns with a nearly invariant relative area for all acquired PL kinetics, suggesting that this rapid relaxation process is intrinsic.

摘要

低维有机-无机金属卤化物混合结构中的激子通常被认为在产生后会由于强量子限制和激子-声子相互作用而迅速发生自陷。在此,我们报告了一项实验研究,该研究探测了一维有机金属卤化物纳米管(CHN)PbBr单晶块体组件中这些自陷激子的动力学。通过在不同激发强度下进行时间分辨光致发光(PL)测量,我们观察到PL衰减行为有显著变化,表现为随着激发通量增加衰减速率加快。我们的结果提供了激子-激子湮灭过程发生的直接证据,这是一种非线性弛豫现象,仅当一些自陷激子变得可移动并能够相互靠近或靠近那些被捕获的激子时才会发生。我们进一步确定了一个快速且占主导地位的PL衰减分量,其寿命约为2 ns,对于所有获取的PL动力学,其相对面积几乎不变,这表明这种快速弛豫过程是固有的。

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