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通过动态核极化增强核磁共振解析胶体ZnO纳米片有机-无机界面的原子级结构

Atomic-Level Structure of the Organic-Inorganic Interface of Colloidal ZnO Nanoplatelets from Dynamic Nuclear Polarization-Enhanced NMR.

作者信息

Badoni Saumya, Terlecki Michał, Carret Sebastien, Poisson Jean-François, Charpentier Thibault, Okuno Hanako, Wolska-Pietkiewicz Małgorzata, Lee Daniel, Lewiński Janusz, De Paëpe Gaël

机构信息

CEA, IRIG-MEM, Universite Grenoble Alpes, 38000 Grenoble, France.

Faculty of Chemistry, Warsaw University of Technology, Noakowskiego 3, 00-664 Warsaw, Poland.

出版信息

J Am Chem Soc. 2024 Oct 9;146(40):27655-27667. doi: 10.1021/jacs.4c09113. Epub 2024 Sep 25.

Abstract

Colloidal semiconductor nanoplatelets (NPLs) have emerged as a new class of nanomaterials that can exhibit substantially distinct optical properties compared to those of isotropic quantum dots, which makes them prime candidates for new-generation optoelectronic devices. Insights into the structure and anisotropic growth of NPLs can offer a blueprint for their controlled fabrication. Here, we present an atomic-level investigation of the organic-inorganic interface structure in ultrathin and stable benzamidine ()-supported ZnO NPLs prepared by the modified ne-pot elf-upporting rganoetallic approach. High-resolution transmission electron microscopy analysis showed a well-faceted hexagonal shape of ZnO NPLs with lateral surfaces terminated by nonpolar (101̅0) facets. The basal surfaces are flat and well-formed on one side and corrugated on the other side, which indicates that the layer-by-layer growth in the thickness of the NPLs likely occurs only in one direction via the expansion of 2D islands on the surface. The ligand coordination modes were elucidated using state-of-the-art dynamic nuclear polarization (DNP)-enhanced solid-state NMR spectroscopy supported by density functional theory chemical shift calculations. Specifically, it was found that (101̅0) nonpolar facets are stabilized by neutral L-type -H ligands with hydrogen bond-supported η1-coordination mode, while polar (0001) and (0001̅) facets are covered by μ-coordinated X-type anionic ligands with different conformations of aromatic rings. Moreover, the ligand packing on (101̅0) lateral facets was determined using C natural abundance (∼1.1%) homonuclear dipolar correlation experiments. Overall, an in-depth understanding of the growth mechanism and the unique bimodal X-type/L-type ligand coordination shell of ZnO NPLs is provided, which will facilitate further design of anisotropic nano-objects.

摘要

胶体半导体纳米片(NPLs)已成为一类新型纳米材料,与各向同性量子点相比,它们可展现出截然不同的光学特性,这使其成为新一代光电器件的理想候选材料。深入了解NPLs的结构和各向异性生长可为其可控制备提供蓝图。在此,我们对通过改进的非原位自支撑有机金属方法制备的超薄且稳定的苯甲脒支撑的ZnO NPLs中的有机-无机界面结构进行了原子级研究。高分辨率透射电子显微镜分析表明,ZnO NPLs呈面形良好的六边形,其侧面由非极性(101̅0)面终止。基面一侧平整且形状良好,另一侧呈波纹状,这表明NPLs厚度方向上的逐层生长可能仅在一个方向上通过表面二维岛的扩展发生。利用最先进的动态核极化(DNP)增强固态核磁共振光谱,并结合密度泛函理论化学位移计算,阐明了配体配位模式。具体而言,发现(101̅0)非极性面由具有氢键支持的η1配位模式的中性L型-H配体稳定,而极性(0001)和(0001̅)面则由具有不同芳环构象的μ配位X型阴离子配体覆盖。此外,利用碳自然丰度(约1.1%)的同核偶极相关实验确定了(101̅0)侧面上的配体堆积。总体而言,本文提供了对ZnO NPLs生长机制以及独特的双峰X型/L型配体配位壳的深入理解,这将有助于进一步设计各向异性纳米物体。

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