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用于表面等离子体共振的由微点阵列通过压电喷墨法形成银纳米颗粒

Piezo inkjet formation of Ag nanoparticles from microdots arrays for surface plasmonic resonance.

作者信息

Aïssa Brahim, Ali Adnan

机构信息

Qatar Environment and Energy Research Institute (QEERI), Hamad Bin Khalifa University (HBKU), Qatar Foundation, P.O. Box 34110, Doha, Qatar.

Department of Chemical Engineering, Jeju National University, Jeju, 63243, Korea.

出版信息

Sci Rep. 2024 Feb 27;14(1):4806. doi: 10.1038/s41598-024-55188-1.

Abstract

The study aims to explore a novel approach for fabricating plasmonic nanostructures to enhance the optical properties and performance of various optoelectronic devices. The research begins by employing a piezo-inkjet printing technique to deposit drops containing Ag nanoparticles (NPs) onto a glass substrate at a predefined equidistance, with the goal of obtaining arrays of Ag microdots (Ag-µdots) on the glass substrate. This process is followed by a thermal annealing treatment. The printing parameters are first optimized to achieve uniform deposition of different sizes of Ag-µdots arrays by controlling the number of Ag ink drops. Subsequently, the printed arrays undergo thermal annealing at various temperatures in air for 60 min, enabling precise and uniform control over nanoparticle formation. The printed Ag nanoparticles are characterized using field emission scanning electron microscopy and atomic force microscopy to analyze their morphological features, ensuring their suitability for plasmonic applications. UV-Vis spectrophotometry is employed to investigate the enhanced surface-plasmonic-resonance properties of the printed AgNPs. Measurements confirm that the equidistant arrays of AgNPs obtained from annealing Ag microdots exhibit enhanced light-matter interaction, leading to a surface plasmon resonance response dependent on the Ag NPs' specific surface area. These enhanced surface plasmonic resonances open avenues for developing cutting-edge optoelectronic devices that leverage the benefits of plasmonic nanostructures, thereby enabling new opportunities for future technological developments across various fields.

摘要

该研究旨在探索一种制造等离子体纳米结构的新方法,以增强各种光电器件的光学特性和性能。研究首先采用压电喷墨打印技术,将含有银纳米颗粒(NPs)的液滴以预定的等间距沉积到玻璃基板上,目的是在玻璃基板上获得银微点(Ag-µdots)阵列。此过程之后是热退火处理。首先优化打印参数,通过控制银墨滴的数量来实现不同尺寸的Ag-µdots阵列的均匀沉积。随后,打印的阵列在空气中的不同温度下进行60分钟的热退火,从而能够对纳米颗粒的形成进行精确且均匀的控制。使用场发射扫描电子显微镜和原子力显微镜对打印的银纳米颗粒进行表征,以分析其形态特征,确保它们适用于等离子体应用。采用紫外-可见分光光度法研究打印的AgNPs增强的表面等离子体共振特性。测量结果证实,通过对Ag微点进行退火获得的AgNPs等距阵列表现出增强的光与物质相互作用,从而产生依赖于Ag NPs比表面积的表面等离子体共振响应。这些增强的表面等离子体共振为开发利用等离子体纳米结构优势的前沿光电器件开辟了道路,从而为各个领域的未来技术发展带来了新机遇。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/492f/10899252/668696f49d20/41598_2024_55188_Fig1_HTML.jpg

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