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通过自组装实现溶液中温度驱动的 CsPbBr 纳米片向镶嵌纳米片的转变。

Temperature-Driven Transformation of CsPbBr Nanoplatelets into Mosaic Nanotiles in Solution through Self-Assembly.

作者信息

Dang Zhiya, Dhanabalan Balaji, Castelli Andrea, Dhall Rohan, Bustillo Karen C, Marchelli Dorwal, Spirito Davide, Petralanda Urko, Shamsi Javad, Manna Liberato, Krahne Roman, Arciniegas Milena P

机构信息

Dipartimento di Chimica e Chimica Industriale, Università degli Studi di Genova, Via Dodecaneso, 31, 16146 Genova, Italy.

National Center for Electron Microscopy, Molecular Foundry, Lawrence Berkeley National Laboratory, Berkeley, California 94720, United States.

出版信息

Nano Lett. 2020 Mar 11;20(3):1808-1818. doi: 10.1021/acs.nanolett.9b05036. Epub 2020 Feb 3.

Abstract

Two-dimensional colloidal halide perovskite nanocrystals are promising materials for light-emitting applications. Recent studies have focused on nanoplatelets that are able to self-assemble and transform on solid substrates. However, the mechanism behind the process and the atomic arrangement of their assemblies remain unclear. Here, we present a detailed analysis of the transformation of self-assembled stacks of CsPbBr nanoplatelets in solution over a period of a few months by using ex situ transmission electron microscopy and surface analysis. We demonstrate that the transformation mechanism can be understood as oriented attachment, proceeding through the following steps: (i) desorption of the ligands from the surfaces of the particles, causing the seamless atomic merging of nanoplatelet stacks into nanobelts; (ii) merging of neighboring nanobelts that form more extended nanoplates; and (iii) attachment of nanobelts and nanoplates, forming objects with an atomic structure that resembles a mosaic made of broken nanotiles. We reveal that aged nanobelts and nanoplates, which are mainly stabilized by amine/ammonium ions, link through a bilayer of CsBr, with the atomic columns of neighboring perovskite lattices shifted by a half-unit-cell, forming Ruddlesden-Popper planar faults. We also show, via in situ monitoring of the nanocrystal photoluminescence combined with transmission electron microscopy analysis, that the transformation is temperature driven and that it can take place within tens of minutes in solution and in spin-coated films. Understanding this process gives crucial information for the design and fabrication of perovskite materials, where control over the type and density of defects is desired, stimulating the development of perovskite nanocrystal structures with tailored electronic properties.

摘要

二维胶体卤化物钙钛矿纳米晶体是用于发光应用的有前途的材料。最近的研究集中在能够在固体基质上自组装和转变的纳米片上。然而,该过程背后的机制及其组装体的原子排列仍不清楚。在这里,我们通过使用非原位透射电子显微镜和表面分析,对溶液中CsPbBr纳米片自组装堆叠在几个月内的转变进行了详细分析。我们证明,转变机制可以理解为定向附着,通过以下步骤进行:(i) 配体从颗粒表面解吸,导致纳米片堆叠无缝原子合并成纳米带;(ii) 相邻纳米带合并形成更扩展的纳米片;(iii) 纳米带和纳米片附着,形成具有类似于由破碎纳米瓦片制成的镶嵌图案的原子结构的物体。我们发现,主要由胺/铵离子稳定的老化纳米带和纳米片通过双层CsBr连接,相邻钙钛矿晶格的原子列偏移半个晶胞,形成Ruddlesden-Popper平面缺陷。我们还通过结合透射电子显微镜分析对纳米晶体光致发光进行原位监测表明,转变是由温度驱动的,并且它可以在溶液和旋涂薄膜中在几十分钟内发生。了解这个过程为钙钛矿材料 的设计和制造提供了关键信息,在钙钛矿材料中需要控制缺陷的类型和密度,从而推动具有定制电子特性的钙钛矿纳米晶体结构的发展。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c958/7997623/af11738378eb/nl9b05036_0001.jpg

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