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超声预处理在氧化锌纳米棒低温合成中的应用

The Application of Ultrasound Pre-Treatment in Low-Temperature Synthesis of Zinc Oxide Nanorods.

作者信息

Drabczyk Anna, Ciężkowska Magda, Kałahurska Katarzyna, Zięba Adam, Bulowski Wojciech, Bucka Katarzyna, Kasza Patryk, Zbroja Krzysztof, Putynkowski Grzegorz, Socha Robert P

机构信息

CBRTP SA-Research and Development Center of Technology for Industry, 3A Ludwika Waryńskiego St., 00-645 Warsaw, Poland.

Faculty of Non-Ferrous Metals, AGH University of Krakow, Al. Mickiewicza 30, 30-059 Kraków, Poland.

出版信息

Materials (Basel). 2024 Oct 11;17(20):4980. doi: 10.3390/ma17204980.

Abstract

Zinc oxide, due to its unique physicochemical properties, including dual piezoelectric and semiconductive ones, demonstrates a high application potential in various fields, with a particular focus on nanotechnology. Among ZnO nanoforms, nanorods are gaining particular interest. Due to their ability to efficiently transport charge carriers and photoelectric properties, they demonstrate significant potential in energy storage and conversion, as well as photovoltaics. They can be prepared via various methods; however, most of them require large energy inputs, long reaction times, or high-cost equipment. Hence, new methods of ZnO nanorod fabrication are currently being sought out. In this paper, an ultrasound-supported synthesis of ZnO nanorods with zinc acetate as a zinc precursor has been described. The fabrication of nanorods included the treatment of the precursor solution with ultrasounds, wherein various sonication times were employed to verify the impact of the sonication process on the effectiveness of ZnO nanorod synthesis and the sizes of the obtained nanostructures. The morphology of the obtained ZnO nanorods was imaged via a scanning electron microscope (SEM) analysis, while the particle size distribution within the precursor suspensions was determined by means of dynamic light scattering (DLS). Additionally, the dynamic viscosity of precursor suspensions was also verified. It was demonstrated that ultrasounds positively affect ZnO nanorod synthesis, yielding longer nanostructures through even reactant distribution. Longer nanorods were obtained as a result of short sonication (1-3 min), wherein prolonged treatment with ultrasounds (4-5 min) resulted in obtaining shorter nanorods. Importantly, the application of ultrasounds increased particle homogeneity within the precursor suspension by disintegrating particle agglomerates. Moreover, it was demonstrated that ultrasonic treatment reduces the dynamic viscosity of precursor suspension, facilitating faster particle diffusion and promoting a more uniform growth of longer ZnO nanorods. Hence, it can be concluded that ultrasounds constitute a promising solution in obtaining homogeneous ZnO nanorods, which is in line with the principles of green chemistry.

摘要

氧化锌因其独特的物理化学性质,包括双压电和半导体性质,在各个领域都展现出了很高的应用潜力,尤其在纳米技术领域。在氧化锌纳米形态中,纳米棒正受到特别关注。由于其能够高效传输电荷载流子以及具有光电特性,它们在能量存储与转换以及光伏领域展现出了巨大潜力。它们可以通过多种方法制备;然而,大多数方法需要大量的能量输入、较长的反应时间或高成本的设备。因此,目前正在寻找制备氧化锌纳米棒的新方法。本文描述了以醋酸锌作为锌前驱体,通过超声辅助合成氧化锌纳米棒的方法。纳米棒的制备包括用超声处理前驱体溶液,其中采用了不同的超声处理时间来验证超声处理过程对氧化锌纳米棒合成效果以及所得纳米结构尺寸的影响。通过扫描电子显微镜(SEM)分析对所得氧化锌纳米棒的形态进行成像,同时借助动态光散射(DLS)确定前驱体悬浮液中的粒径分布。此外,还对前驱体悬浮液的动态粘度进行了验证。结果表明,超声对氧化锌纳米棒的合成有积极影响,通过使反应物分布均匀从而生成更长的纳米结构。短时间超声处理(1 - 3分钟)得到了更长的纳米棒,而长时间超声处理(4 - 5分钟)则导致得到更短的纳米棒。重要的是,超声的应用通过分解颗粒团聚体提高了前驱体悬浮液中颗粒的均匀性。此外,还表明超声处理降低了前驱体悬浮液的动态粘度,促进了颗粒更快扩散,并促进了更长的氧化锌纳米棒更均匀地生长。因此,可以得出结论,超声是获得均匀氧化锌纳米棒的一种有前景的解决方案,这符合绿色化学的原则。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/dfa4/11509445/334cd1eb2fa1/materials-17-04980-g001.jpg

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