Nanoparticle Over Mirror plasmonic structures prepared with use of Au colloid produced by laser ablation in water

M. Sawczak, Marcin Zyskowski, J. Karczewski, P. Atanasov, N. Nedyalkov, R. Nikov, N. Stankova, G. Śliwiński
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引用次数: 2

Abstract

Recently, an intensive research is carried out on plasmonic structures due to their potential application in many areas such as sensing, light harvesting and energy conversion and storage. In particular, a growing interest is observed in the Nanoparticle Over Mirror (NOM) structures for which the lithography and surface chemical functionalization represent the most popular production routes1. However, the application of those techniques is limited by the low efficacy, process complexity and chemical contamination of nanoparticles (NP). In this work, we report the contamination-free and low cost fabrication method of NOMs based on wet coating and ultrasonic-assisted nanocolloid drying process. The glass plates covered with magnetron sputtered 100 nm thick Au film and subsequently with Al2O3 layers (6 – 36 nm) by means of pulsed laser deposition are used as substrates. Au NPs are produced in the form of colloidal suspension by means of laser ablation in water using the 1064 nm, 6 ns Nd:YAG laser. The NOM synthesis is finalized by imposing of the Au NP suspension onto the as prepared Au-Al2O3/glass substrates and dried. To avoid NP agglomeration, the wet coated substrates are sonicated using 20W, 20 kHz ultrasound generator. SEM inspection of the obtained NOM structures confirms the positive sonication effect, i.e. the presence of agglomerate-free, homogenous layers. These consist of NPs (36 nm average diameter) which are characterized by the resonance absorption band at 528 nm. For NOM structures the UV-vis spectra reveal increased infrared activity and peak shift in agreement with theoretical modeling2. The NOM structure characterization is completed by analysis of the SEM and profilometry measurement results.
利用水中激光烧蚀产生的金胶体制备纳米粒子超镜等离子体结构
近年来,由于等离子体结构在传感、光收集、能量转换和存储等领域具有潜在的应用前景,引起了人们的广泛关注。特别是,人们对纳米颗粒Over Mirror (NOM)结构越来越感兴趣,其中光刻和表面化学功能化是最流行的生产途径1。然而,这些技术的应用受到纳米颗粒(NP)效率低、工艺复杂和化学污染的限制。本文报道了一种基于湿涂和超声辅助纳米胶体干燥工艺的无污染低成本纳米材料制备方法。采用脉冲激光沉积的方法,在玻璃板上覆盖磁控溅射100 nm厚的Au薄膜,然后再覆盖6 ~ 36 nm的Al2O3层。采用1064 nm, 6 ns Nd:YAG激光在水中烧蚀制备了胶体悬浮液形式的金纳米粒子。通过将Au NP悬浮液施加到制备好的Au- al2o3 /玻璃基板上并干燥,最终完成了NOM的合成。为了避免NP团聚,采用20W, 20khz超声发生器对湿涂基板进行超声处理。对所获得的NOM结构的SEM检查证实了积极的超声效应,即存在无团块的均匀层。它们由NPs(平均直径36 nm)组成,其特征是在528 nm处的共振吸收带。对于NOM结构,紫外可见光谱显示出增加的红外活性和峰移,这与理论模型一致2。通过对SEM和轮廓测量结果的分析,完成了NOM的结构表征。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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