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通用氧化物壳层生长实现了在阴离子交换反应过程中对钙钛矿纳米晶体的原位结构研究。

Universal Oxide Shell Growth Enables in Situ Structural Studies of Perovskite Nanocrystals during the Anion Exchange Reaction.

作者信息

Loiudice Anna, Strach Michal, Saris Seryio, Chernyshov Dmitry, Buonsanti Raffaella

机构信息

Laboratory of Nanochemistry for Energy Research, Institute of Chemical Sciences and Engineering , Ecole Politechnique Fédérale de Lausanne , Sion CH-1950 , Switzerland.

The Swiss-Norvegian Beamline (SNBL) , ESRF CS40220 , 38043 Grenoble Cedex 9, France.

出版信息

J Am Chem Soc. 2019 May 22;141(20):8254-8263. doi: 10.1021/jacs.9b02061. Epub 2019 May 10.

Abstract

The ability to tune thin oxide coatings by wet-chemistry is desirable for many applications, yet it remains a key synthetic challenge. In this work, we introduce a general colloidal atomic layer deposition (c-ALD) synthesis to grow an alumina shell with tunable thickness around nanocrystalline cores of various compositions spanning from ionic semiconductors (i.e., CsPbX, with X = Br, I, Cl) to metal oxides and metals (i.e., CeO and Ag). The distinctive characteristics of each core (i.e., emission, facile surface functionalization, stability) allowed us to optimize and to elucidate the chemistry of the c-ALD process. Compared to gas-phase ALD, this newly developed synthesis has the advantage of preserving the colloidal stability of the nanocrystalline core while controlling the shell thickness from 1 to 6 nm. As one example of the opportunities offered by the growth of a thin oxide shell, we study the anion exchange reaction in the CsPbX perovskites nanocrystals by in situ X-ray diffraction, which had been impeded so far by the instability of this class of materials and by the fast exchange kinetics.

摘要

通过湿化学方法调节薄氧化物涂层的能力在许多应用中都很有必要,但这仍然是一个关键的合成挑战。在这项工作中,我们引入了一种通用的胶体原子层沉积(c-ALD)合成方法,以在各种组成的纳米晶核周围生长具有可调厚度的氧化铝壳,这些纳米晶核的组成范围从离子半导体(即CsPbX,其中X = Br、I、Cl)到金属氧化物和金属(即CeO和Ag)。每个核的独特特性(即发射、易于表面功能化、稳定性)使我们能够优化并阐明c-ALD过程的化学原理。与气相ALD相比,这种新开发的合成方法具有在保持纳米晶核胶体稳定性的同时将壳厚度控制在1至6纳米的优势。作为生长薄氧化物壳所带来机遇的一个例子,我们通过原位X射线衍射研究了CsPbX钙钛矿纳米晶体中的阴离子交换反应,到目前为止,这类材料的不稳定性和快速交换动力学阻碍了该反应的研究。

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