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使用原位光物理监测进行低维钙钛矿纳米薄片合成以建立可控生长。

Low-dimensional perovskite nanoplatelet synthesis using in situ photophysical monitoring to establish controlled growth.

机构信息

The Molecular Foundry, Lawrence Berkeley National Laboratory, Berkeley, CA 94720, USA.

Chemical Sciences Division, Lawrence Berkeley National Laboratory, Berkeley, California 94720, USA.

出版信息

Nanoscale. 2019 Oct 7;11(37):17262-17269. doi: 10.1039/c9nr04010b. Epub 2019 Jun 27.

Abstract

Perovskite nanoparticles have attracted the attention of research groups around the world for their impressive photophysical properties, facile synthesis and versatile surface chemistry. Here, we report a synthetic route that takes advantage of a suite of soluble precursors to generate CsPbBr perovskite nanoplatelets with fine control over size, thickness and optical properties. We demonstrate near unit cell precision, creating well characterized materials with sharp, narrow emission lines at 430, 460 and 490 nm corresponding to nanoplatelets that are 2, 4, and 6 unit cells thick, respectively. Nanoplatelets were characterized with optical spectroscopy, atomic force microscopy, scanning electron microscopy and transmission electron microscopy to explicitly correlate growth conditions, thickness and resulting photophysical properties. Detailed in situ photoluminescence spectroscopic studies were carried out to understand and optimize particle growth by correlating light emission with nanoplatelet growth across a range of synthetic conditions. It was found that nanoplatelet thickness and emission wavelength increase as the ratio of oleic acid to oleyl amine or the reaction temperature is increased. Using this information, we control the lateral size, width and corresponding emission wavelength of the desired nanoplatelets by modulating the temperature and ratios of the ligand.

摘要

钙钛矿纳米粒子因其令人印象深刻的光物理性质、简便的合成和多功能的表面化学而引起了世界各地研究小组的关注。在这里,我们报告了一种合成途径,该途径利用了一系列可溶性前体制备了具有精细尺寸、厚度和光学性能控制的 CsPbBr 钙钛矿纳米板。我们证明了接近单元精度,创建了具有鲜明、窄发射线的良好特征材料,分别对应于 2、4 和 6 个单元厚度的纳米板,发射线位于 430、460 和 490nm。使用光学光谱、原子力显微镜、扫描电子显微镜和透射电子显微镜对纳米板进行了表征,以明确关联生长条件、厚度和由此产生的光物理性质。进行了详细的原位光致发光光谱研究,以通过将光发射与纳米板的生长在一系列合成条件下进行相关联来理解和优化颗粒生长。结果发现,随着油酸与油胺的比例或反应温度的升高,纳米板的厚度和发射波长增加。利用这些信息,我们通过调节温度和配体的比例来控制所需纳米板的横向尺寸、宽度和相应的发射波长。

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