二氧化钛纳米结构的电化学合成和形态分析:纳米管、纳米草和纳米花边

IF 3.4 3区 材料科学 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY
Younghwan Kim, Swomitra Kumar Mohanty
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引用次数: 0

摘要

二氧化钛(TiO2)纳米结构随合成条件的不同呈现出不同的形貌。本研究考察了不同阳极氧化参数对TiO2纳米管、纳米草和纳米粒子形成的影响。利用场发射扫描电镜对这些纳米结构的形貌和生长速率进行了分析。通过调整阳极氧化过程中的温度、含水量、持续时间和施加电位,可以精确地控制纳米结构的结构特性。纳米管的长度和直径受乙二醇(EG)浓度、外加电压和温度的影响。纳米草的数量由阳极氧化温度决定。氢氟酸(HF)预处理对钛箔纳米粒子形成的影响。结果表明,较高的电晶体浓度和电位可以产生更长的纳米管,而较低的电晶体浓度和较高的电位可以产生更大的纳米管直径。温度变化控制着纳米草的数量。HF预处理有利于在表面形成六角形纳米空间网络。通过调整合成条件,本研究提供了一种控制TiO2纳米结构形态的方法。这些发现对优化传感器、光催化和其他纳米技术领域的TiO2纳米结构具有重要意义,在这些领域,特定的结构特性对增强性能至关重要。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Electrochemical Synthesis and Morphological Analysis of Titanium Dioxide Nanostructures: Nanotubes, Nanograss, and Nanolace

Electrochemical Synthesis and Morphological Analysis of Titanium Dioxide Nanostructures: Nanotubes, Nanograss, and Nanolace

Titanium dioxide (TiO2) nanostructures exhibit diverse morphologies depending on synthesis conditions. This study investigates the effects of varying anodization parameters on TiO2 nanotubes, nanograss, and nanolace formation. Field-emission scanning electron microscopy is employed to analyze these nanostructures’ morphology and growth rates. The structural characteristics of the resulting nanostructures are precisely controlled by adjusting temperature, water content, duration, and applied potential during the anodization process. Nanotube length and diameter are influenced by ethylene glycol (EG) concentration, applied voltage, and temperature. The quantity of nanograss is determined by the anodization temperature. Nanolace formation is affected by hydrofluoric acid (HF) pretreatment of titanium foil. The results demonstrate that higher EG concentrations and applied potentials produce longer nanotubes, whereas lower EG concentrations with higher potentials result in larger nanotube diameters. Temperature variations control the amount of nanograss. HF pretreatment facilitates the formation of a hexagonal nanolace network on the surface. By tailoring synthesis conditions, this study provides a method for controlling the morphology of TiO2 nanostructures. These findings have implications for optimizing TiO2 nanostructures in sensors, photocatalysis, and other areas of nanotechnology, where specific structural properties are crucial for enhanced performance.

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来源期刊
Advanced Engineering Materials
Advanced Engineering Materials 工程技术-材料科学:综合
CiteScore
5.70
自引率
5.60%
发文量
544
审稿时长
1.7 months
期刊介绍: Advanced Engineering Materials is the membership journal of three leading European Materials Societies - German Materials Society/DGM, - French Materials Society/SF2M, - Swiss Materials Federation/SVMT.
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