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单 CsPbBr 纳米片晶格结构的光学探测

Optical Probing of Crystal Lattice Configurations in Single CsPbBr Nanoplatelets.

作者信息

Schmitz Alexander, Montanarella Federico, Schaberg L Leander, Abdelbaky Mohamed, Kovalenko Maksym V, Bacher Gerd

机构信息

Werkstoffe der Elektrotechnik & CENIDE, Universität Duisburg-Essen, Bismarckstraße 81, 47057 Duisburg, Germany.

Laboratory of Inorganic Chemistry, Department of Chemistry and Applied Biosciences, ETH Zürich, Vladimir Prelog Weg 1, Zürich CH-8093, Switzerland.

出版信息

Nano Lett. 2021 Nov 10;21(21):9085-9092. doi: 10.1021/acs.nanolett.1c02775. Epub 2021 Oct 21.

Abstract

Quantum-confined nanostructures of CsPbBr with luminescence quantum efficiencies approaching unity have shown tremendous potential for lighting and quantum light applications. In contrast to CsPbBr quantum dots, where the fine structure of the emissive exciton state has been intensely discussed, the relationship among lattice orientation, shape anisotropy, and exciton fine structure in lead halide nanoplatelets has not yet been established. In this work, we investigate the fine structure of the bright triplet exciton of individual CsPbBr nanoplatelets by polarization-resolved micro- and magnetophotoluminescence spectroscopy at liquid helium temperature and find a large zero-field splitting of up to 2.5 meV. A unique relation between the crystal structure and the photoluminescence emission confirms the existence of two distinct crystal configurations in such nanoplatelets with different alignments of the crystal axes with respect to the nanoplatelet facets. Polarization-resolved experiments eventually allow us to determine the absolute orientation of an individual nanoplatelet on the substrate purely by optical means.

摘要

发光量子效率接近1的CsPbBr量子限域纳米结构在照明和量子光应用方面展现出了巨大潜力。与CsPbBr量子点不同,后者发射激子态的精细结构已得到深入讨论,而卤化铅纳米片的晶格取向、形状各向异性和激子精细结构之间的关系尚未确立。在这项工作中,我们通过在液氦温度下的偏振分辨微光致发光光谱和磁光致发光光谱研究了单个CsPbBr纳米片明亮三重态激子的精细结构,发现高达2.5 meV的大零场分裂。晶体结构与光致发光发射之间的独特关系证实了此类纳米片中存在两种不同的晶体构型,其晶轴相对于纳米片晶面具有不同的取向。偏振分辨实验最终使我们能够完全通过光学手段确定单个纳米片在衬底上的绝对取向。

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