Suppr超能文献

溅射辅助将ZnFe₂O₄微晶装饰在TiO₂纳米棒上的微观结构及其对亚甲基橙的光降解性能

Microstructures and Photodegradation Performance toward Methylene Orange of Sputtering-Assisted Decoration of ZnFe₂O₄ Crystallites onto TiO₂ Nanorods.

作者信息

Liang Yuan-Chang, Liu Yen-Chen

机构信息

Institute of Materials Engineering, National Taiwan Ocean University, Keelung 20224, Taiwan.

出版信息

Nanomaterials (Basel). 2019 Feb 5;9(2):205. doi: 10.3390/nano9020205.

Abstract

In this study, TiO₂⁻ZnFe₂O₄ (ZFO) core-shell nanorods with various ZFO crystallite thicknesses were synthesized through sputtering-deposited ZFO thin films onto the surfaces of TiO₂ nanorods. By coupling the ZFO narrow bandgap oxide with TiO₂, an enhanced photodegradation efficiency of methylene orange under irradiation was achieved. Structural analyses revealed that ZFO crystallites fully covered the surfaces of the TiO₂ nanorods. The sputtering-deposited ZFO crystallites on the head region of the composite nanorods were markedly thicker than those covering the lateral region of the composite nanorods. The coverage of ZFO crystallites on the TiO₂ nanorods led to an improved light harvesting, a decrease in the hole⁻electron recombination rate, as well as the enhanced photodegradation activity of the TiO₂⁻ZFO heterostructures under irradiation. The optimized ZFO thickness on the head region of the composite nanorods was approximately 43 nm on average and that at the lateral region of the composite nanorods was 15 nm, which exhibited superior photodegradation ability to methylene orange and retained a stable photodegradation efficiency of approximately 97% after cycling tests. The results herein demonstrate that sputtering deposition of ZFO crystallite with tunable thickness is a promising approach to designing TiO₂⁻ZFO composite nanorods with various ZFO coverage sizes and to adjust their photodegradation ability toward organic dyes.

摘要

在本研究中,通过将ZFO薄膜溅射沉积到TiO₂纳米棒表面,合成了具有不同ZFO微晶厚度的TiO₂⁻ZnFe₂O₄(ZFO)核壳纳米棒。通过将ZFO窄带隙氧化物与TiO₂耦合,在光照下实现了亚甲基橙光降解效率的提高。结构分析表明,ZFO微晶完全覆盖了TiO₂纳米棒的表面。复合纳米棒头部区域溅射沉积的ZFO微晶明显比覆盖复合纳米棒侧面区域的ZFO微晶厚。ZFO微晶在TiO₂纳米棒上的覆盖导致光捕获能力提高、空穴⁻电子复合率降低,以及TiO₂⁻ZFO异质结构在光照下光降解活性增强。复合纳米棒头部区域的ZFO最佳厚度平均约为43 nm,侧面区域的ZFO最佳厚度为15 nm,其对亚甲基橙表现出优异的光降解能力,并且在循环测试后保持约97%的稳定光降解效率。本文结果表明,溅射沉积具有可调厚度的ZFO微晶是一种有前景的方法,可用于设计具有不同ZFO覆盖尺寸的TiO₂⁻ZFO复合纳米棒,并调节其对有机染料的光降解能力。

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验