利用飞秒激光可控大面积制备光照角敏感超表面

IF 4.3 4区 物理与天体物理 Q2 CHEMISTRY, PHYSICAL
Yanping Yuan, Wenbo Wang, Dongfang Li, Tianyu Zhao, Weina Han
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引用次数: 0

摘要

等离子体纳米结构已经显示出在亚波长尺度上操纵电磁波的巨大潜力。等离子体纳米结构具有光学弯曲、吸收和散射特性,以及强等离子体共振。然而,目前的制造方法严重依赖于光刻或模板,这在成本、效率、复杂性和可扩展性方面都有限制。本文提出了一种利用飞秒激光直接写入技术实现有序金属-绝缘体-金属(MIM)金纳米碰撞阵列的可控制备方法。通过改变激光脉冲能量,可以实现对金纳米结构形状和尺寸的精细调节和控制,从而改变单个结构的共振光散射和等离子体结构颜色。采用高功率、高衰减、倍频激光器与长焦物镜相结合的方式,可以实现具有照明角敏感特性的大规模周期金纳米结构。这在高分辨率成像、信息存储、纳米器件、光学超表面和生物传感器等方面具有巨大的应用潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Controllable Large-Area Fabrication of Illumination Angle-Sensitive Metasurfaces Using Femtosecond Laser

Plasmonic nanostructures have shown significant potential for manipulating electromagnetic waves at the subwavelength scale. Plasmonic nanostructures exhibit optical bending, absorption, and scattering properties, as well as strong plasmonic resonance. However, the current fabrication methods heavily rely on photolithography or templates, which pose limitations in terms of cost, efficiency, complexity, and scalability. In this study, a novel method is proposed for the controllable fabrication of ordered metal–insulator-metal (MIM) gold nanobump arrays by femtosecond laser direct writing. The fine regulation and control of the shape and size of the gold nanostructure can be realized by changing laser pulse energy, which leads to the change of the resonance light scattering and the plasmon structure color of individual structure. Large-scale periodic gold nanostructure with illumination angle sensitive characteristic can be achieved by adopting the combination mode of high-power, high-attenuation, frequency-doubled laser, and a telephoto objective lens. This may have great application potential in the aspects of high-resolution imaging, information storage, nanodevices, optical metasurfaces, and biosensors.

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来源期刊
Plasmonics
Plasmonics 工程技术-材料科学:综合
CiteScore
5.90
自引率
6.70%
发文量
164
审稿时长
2.1 months
期刊介绍: Plasmonics is an international forum for the publication of peer-reviewed leading-edge original articles that both advance and report our knowledge base and practice of the interactions of free-metal electrons, Plasmons. Topics covered include notable advances in the theory, Physics, and applications of surface plasmons in metals, to the rapidly emerging areas of nanotechnology, biophotonics, sensing, biochemistry and medicine. Topics, including the theory, synthesis and optical properties of noble metal nanostructures, patterned surfaces or materials, continuous or grated surfaces, devices, or wires for their multifarious applications are particularly welcome. Typical applications might include but are not limited to, surface enhanced spectroscopic properties, such as Raman scattering or fluorescence, as well developments in techniques such as surface plasmon resonance and near-field scanning optical microscopy.
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