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通过斯塔克光谱研究量化混合相有机金属卤化物多量子阱中的激子不均匀性

Quantifying Exciton Heterogeneities in Mixed-Phase Organometal Halide Multiple Quantum Wells via Stark Spectroscopy Studies.

作者信息

Amerling Eric, Baniya Sangita, Lafalce Evan, Blair Steve, Vardeny Zeev Valy, Whittaker-Brooks Luisa

机构信息

Department of Chemistry, University of Utah, Salt Lake City, Utah 84112, United States.

Department of Physics, University of Utah, Salt Lake City, Utah 84112, United States.

出版信息

ACS Appl Mater Interfaces. 2020 Nov 25;12(47):52538-52548. doi: 10.1021/acsami.0c13564. Epub 2020 Nov 12.

Abstract

Solution-processable two-dimensional (2D) organic-inorganic hybrid perovskite (OIHP) quantum wells naturally self-assemble through weak van der Waals forces. In this study, we investigate the structural and optoelectronic properties of 2D-layered butylammonium (CHNH, BA) methylammonium (CHNH, MA) lead iodide, (BA)(MA)PbI quantum wells with varying from 1 to 4. Through conventional structural characterization, (BA)(MA)PbI thin films showcase high-quality phase () purity. However, while investigating the optoelectronic properties, it is clear that these van der Waals heterostructures consist of multiple quantum well thicknesses coexisting within a single thin film. We utilized electroabsorption spectroscopy and Liptay theory to develop an analytical tool capable of deconvoluting the excitonic features that arise from different quantum well thicknesses (n) in (BA)(MA)PbI thin films. To obtain a quantitative assessment of exciton heterogeneities within a thin film comprising multiple quantum well structures, exciton resonances quantified by absorption spectroscopy were modeled as Gaussian features to yield various theory-generated electroabsorption spectra, which were then fit to our experimental electroabsorption features. In addition to identifying the quantum well heterostructures present within a thin film, this novel analytical tool provides powerful insights into the exact exciton composition and can be utilized to analyze the optoelectronic properties of many other mixed-phase quantum well heterostructures beyond those formed by OIHPs. Our findings may help in designing more efficient and reproducible light-emitting diodes based on 2D mixed-phase metal-organic multiple quantum wells.

摘要

可溶液加工的二维(2D)有机-无机杂化钙钛矿(OIHP)量子阱通过弱范德华力自然自组装。在本研究中,我们研究了二维层状丁基铵(CH₃NH₂,BA)甲基铵(CH₃NH₂,MA)碘化铅,(BA)ₓ(MA)₁₋ₓPbI₃量子阱(x从1到4变化)的结构和光电特性。通过传统结构表征,(BA)ₓ(MA)₁₋ₓPbI₃薄膜展示出高质量的相()纯度。然而,在研究光电特性时,很明显这些范德华异质结构由在单个薄膜中共存的多个量子阱厚度组成。我们利用电吸收光谱和利普泰理论开发了一种分析工具,能够解卷积(BA)ₓ(MA)₁₋ₓPbI₃薄膜中不同量子阱厚度(n)产生的激子特征。为了获得对包含多个量子阱结构的薄膜内激子不均匀性的定量评估,通过吸收光谱量化的激子共振被建模为高斯特征,以产生各种理论生成的电吸收光谱,然后将其与我们的实验电吸收特征进行拟合。除了识别薄膜中存在的量子阱异质结构外,这种新颖的分析工具还能深入了解确切的激子组成,并且可用于分析许多其他混合相量子阱异质结构的光电特性,而不仅仅是由OIHP形成的那些。我们的发现可能有助于设计基于二维混合相金属有机多量子阱的更高效、可重复的发光二极管。

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