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可编程分层等离子体-光子阵列与激光诱导的薄膜去湿

Programmable hierarchical plasmonic-photonic arrays laser-induced film dewetting.

作者信息

Zheng Zeyu, Miao Yu, Yao Jiyuan, Chen Jiamei, Wen Jialin, Chen Xiaodan, Lu Yanxin, Jiang Xiaofang, Shui Lingling

机构信息

Guangdong Provincial Key Laboratory of Nanophotonic Functional Materials and Devices, School of Information and Optoelectronic Science and Engineering, South China Normal University, Guangzhou 510006, P. R. China.

Laboratory of Quantum Engineering and Quantum Material, School of Physics and Telecommunication Engineering, South China Normal University, Guangzhou 510006, China.

出版信息

Nanophotonics. 2022 Jul 15;11(16):3641-3651. doi: 10.1515/nanoph-2022-0272. eCollection 2022 Sep.

Abstract

Hierarchical and periodic nanostructures of dielectrics or metals are highly demanded for wide applications in optical, electrical, biological, and quantum devices. In this work, programmable plasmonic-photonic hierarchical nanostructures are fabricated using a facile and effective method with high controllability and stable reproducibility. The fabrication involves colloidal self-assembly, metal film deposition, and pulsed laser-induced dewetting in sequence for controllably pairing metal nanostructures on dielectric nanospheres in either large area or a local precision. Au nanostructures including Au nanocrown (AuNC), large Au nanosphere (AuNS), and multiple small Au nanoparticles (AuNPs) have been paired one-on-one on assembled SiO nanosphere (SiONS) arrays, with size and shape controlled by correlating the laser fluence and irradiation time, and the Au film thickness. The fabricated hierarchical nanostructures demonstrate synergistic effect of the photonic effects from the monolayer SiONS arrays and the surface plasma resonance effect from the Au nanostructures. The dewetting induced metal film reshaping has been modeled theoretically corresponding to observed experimental results. We can directly "write" the plasmonic Au nanostructures on the photonic crystal array using a focused laser beam to form encode patterns, showing angle-dependent structural colors for anti-counterfeiting information storage and display in rigid/flexible and opaque/transparent devices. It provides a promising path to actively construct on-demand pixelated plasmonic-photonic arrays for optical multiplexing technology in sensing, information encryption, and display.

摘要

介电体或金属的分层和周期性纳米结构在光学、电学、生物和量子器件等广泛应用中具有很高的需求。在这项工作中,采用一种简便有效的方法制备了可编程的等离子体-光子分层纳米结构,该方法具有高可控性和稳定的可重复性。制备过程依次包括胶体自组装、金属膜沉积和脉冲激光诱导去湿,以在大面积或局部精度上可控地将金属纳米结构与介电纳米球配对。金纳米结构,包括金纳米冠(AuNC)、大金纳米球(AuNS)和多个小金纳米颗粒(AuNPs),已一对一地配对在组装好的SiO纳米球(SiONS)阵列上,其尺寸和形状通过关联激光能量密度和辐照时间以及金膜厚度来控制。所制备的分层纳米结构展示了来自单层SiONS阵列的光子效应和来自金纳米结构的表面等离子体共振效应的协同作用。理论上对去湿诱导的金属膜重塑进行了建模,与观察到的实验结果相对应。我们可以使用聚焦激光束直接在光子晶体阵列上“写入”等离子体金纳米结构以形成编码图案,在刚性/柔性和不透明/透明器件中显示角度相关的结构颜色用于防伪信息存储和显示。它为在传感、信息加密和显示等光学复用技术中主动构建按需像素化的等离子体-光子阵列提供了一条有前景的途径。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9611/11501294/2061334a94d7/j_nanoph-2022-0272_fig_001.jpg

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