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铁辅助生长各向异性氧化锌纳米结构。

Iron-assisted growth of anisotropic ZnO nanostructures.

作者信息

Xuan Zhengxi, Dutta Avisek, Liu Shuo, Qin Yueling, Chen Kaiwen, Fu Zheng, Prasad Paras N, Dun Chaochao, Swihart Mark T

机构信息

Department of Chemical and Biological Engineering, University at Buffalo, The State University of New York Buffalo 14226 NY USA

RENEW Institute, University at Buffalo, The State University of New York Buffalo 14226 NY USA.

出版信息

Chem Sci. 2025 Jun 2;16(26):12168-12177. doi: 10.1039/d5sc01974e. eCollection 2025 Jul 2.

Abstract

Anisotropic nanostructures offer a promising pathway to modulate structure-function relationships of materials. However, the correlation between growth direction of high-quality anisotropic nanostructures, the synthesis conditions and mechanisms controlling their growth, and their magnetic and optical properties remain underexplored. In this study, we developed an iron-assisted anisotropic growth method to form zinc oxide nanostructures on the O-polar (0001̄) surface, resulting in two distinct ZnO-based nanostructures: hand-shaped nanostructures and truncated hexagonal nanopyramids. In contrast to most reports of anisotropic nanostructure synthesis, which primarily focus on morphology control through ligand-ligand interactions, the current study probes the effects of doping on anisotropic growth, and how doping, along with ligand-ligand interactions and facet-specific ligand binding, control nanostructure morphology. The reaction mechanisms leading to formation of these novel structures were thoroughly probed by systematically manipulating synthesis parameters. A two-step formation mechanism was identified: first, a hexagonal platform forms through an initial homogeneous nucleation process, followed by secondary heterogeneous nucleation, which results in metastable secondary nanostructures growing on the oxygen-rich template. Optical and magnetic properties of these Fe/ZnO nanostructures were characterized. Our findings provide a new strategy that uses a magnetic element as a dopant to build new nanostructures of ZnO with controllable size and shape growing on an oxygen-rich crystal plane. These materials could have applications in novel technologies where both optoelectronic and magnetic properties are of interest.

摘要

各向异性纳米结构为调控材料的结构-功能关系提供了一条很有前景的途径。然而,高质量各向异性纳米结构的生长方向、控制其生长的合成条件和机制,以及它们的磁性和光学性质之间的相关性仍未得到充分探索。在本研究中,我们开发了一种铁辅助各向异性生长方法,以在O极性(0001̄)表面形成氧化锌纳米结构,从而得到两种不同的基于氧化锌的纳米结构:手形纳米结构和截顶六边形纳米金字塔。与大多数主要关注通过配体-配体相互作用进行形态控制的各向异性纳米结构合成报告不同,本研究探究了掺杂对各向异性生长的影响,以及掺杂如何与配体-配体相互作用和特定晶面的配体结合一起控制纳米结构形态。通过系统地操纵合成参数,深入探究了导致这些新型结构形成的反应机制。确定了一种两步形成机制:首先,通过初始均匀成核过程形成一个六边形平台,随后是二次异质成核,这导致亚稳态二次纳米结构在富氧模板上生长。对这些铁/氧化锌纳米结构的光学和磁性性质进行了表征。我们的研究结果提供了一种新策略,即使用磁性元素作为掺杂剂来构建在富氧晶面上生长的尺寸和形状可控的新型氧化锌纳米结构。这些材料可应用于对光电和磁性性质都感兴趣的新技术中。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/965f/12217697/a8a8736300f2/d5sc01974e-f1.jpg

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