Near-field control of gold nanostructure by the interaction of SPP and incident light

IF 0.8 4区 物理与天体物理 Q3 PHYSICS, MULTIDISCIPLINARY
Wang Yue, Wang Lun, Sun Baixun, Lang Peng, Xu Yang, Zhao Zhenlong, Song Xiaowei, Ji Boyu, Lin Jingquan
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引用次数: 0

Abstract

Localized Surface Plasmon (LSP) in nanostructure excited by Surface Plasmon Polariton (SPP) corresponds to stronger near-field enhancement and special spectral and dynamic responses that provides a new path to explore the interaction between light and matter. Meanwhile, this scheme can also release the signal background noise and structural thermal effect, and improve the performance of plasmonic components and sensing detectors based on LSP. However, the current research on this aspect is still insufficient. In this paper, we investigated the near-field characteristics of a plasmon composite structure composed of plasmon focusing lens and gold nanorod under the excitation of dual-beam using Finite-Difference Time-Domain (FDTD) method. The result shows that the near-field intensity control on the upper surface and in the gap position of the nanorod can be achieved by adjusting the relative time delay between the first light beam (used to excite SPP) and the second light beam (used to excite LSP). Specifically, the maximum adjustment range of the near-field intensity corresponding to 770 nm resonant mode in the gap position is about 23, and the adjustment period is about 2.4 fs. In a resonant mode dominated by SPP at a wavelength of 999 nm, the near-field intensity adjustment range is as small as 6, and the adjustment period is about 4 fs. On the upper surface of the structure, the adjustment range of the near-field intensity of the two resonant modes (719 nm and 802 nm) is basically the same (about 15), and the adjustment period is 2.4 fs and 2.8 fs. The achievement of the near field control is attributed to the coherent superposition of SPP-excited LSP with light-excited LSP. In addition, the dephasing time of the coupling field was investigated using quasi- normal mode. It is found that the nanorod structure will correspond to different dephasing time under different relative time delay between two excitation light beams. Specifically, for the time delay of 0.72 fs (Δt=0.72 fs), the corresponding dephasing time for both modes is the same of 6.0 fs. For Δt=1.92 fs, the dephasing time of the longer-wavelength mode is 7.1 fs, and the one of the shorter-wavelength mode is 5.8 fs. We attribute the variation of the dephasing time to different coupling strength between the two modes at different delay times. This study may further promote the application of plasmons in the fields of surface-enhanced Raman scattering and plasmon assisted catalysis.
SPP与入射光相互作用对金纳米结构的近场控制
表面等离子激元(SPP)激发纳米结构中的局部表面等离子激元(LSP)具有较强的近场增强和特殊的光谱和动态响应,为探索光与物质的相互作用提供了新的途径。同时,该方案还可以释放信号背景噪声和结构热效应,提高基于LSP的等离子体元件和传感探测器的性能。然而,目前在这方面的研究仍然不足。本文采用时域有限差分(FDTD)方法研究了双光束激励下等离子体聚焦透镜和金纳米棒组成的等离子体复合结构的近场特性。结果表明,通过调节第一束光(激发SPP)和第二束光(激发LSP)之间的相对时间延迟,可以实现纳米棒上表面和间隙位置的近场强度控制。其中,770 nm谐振模式在间隙位置对应的近场强度最大调节范围约为23,调节周期约为2.4 fs。在999nm波长以SPP为主的谐振模式下,近场强度调节范围小至6,调节周期约为4fs。在结构的上表面,719 nm和802 nm两种谐振模式的近场强度调节范围基本相同(约为15),调节周期分别为2.4 fs和2.8 fs。近场控制的实现主要归功于spp激励LSP和光激励LSP的相干叠加。此外,利用准正态模对耦合场的消相时间进行了研究。研究发现,在两束激发光之间不同的相对延时下,纳米棒结构对应不同的消相时间。具体来说,当时间延迟为0.72 fs (Δt=0.72 fs)时,两种模式对应的消相时间为6.0 fs。当Δt=1.92 fs时,长波模式的消相时间为7.1 fs,短波模式的消相时间为5.8 fs。我们将消相时间的变化归因于两种模式在不同延迟时间下的不同耦合强度。本研究将进一步促进等离子体在表面增强拉曼散射和等离子体辅助催化等领域的应用。
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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来源期刊
Acta Physica Sinica
Acta Physica Sinica 物理-物理:综合
CiteScore
1.70
自引率
30.00%
发文量
31245
审稿时长
1.9 months
期刊介绍: Acta Physica Sinica (Acta Phys. Sin.) is supervised by Chinese Academy of Sciences and sponsored by Chinese Physical Society and Institute of Physics, Chinese Academy of Sciences. Published by Chinese Physical Society and launched in 1933, it is a semimonthly journal with about 40 articles per issue. It publishes original and top quality research papers, rapid communications and reviews in all branches of physics in Chinese. Acta Phys. Sin. enjoys high reputation among Chinese physics journals and plays a key role in bridging China and rest of the world in physics research. Specific areas of interest include: Condensed matter and materials physics; Atomic, molecular, and optical physics; Statistical, nonlinear, and soft matter physics; Plasma physics; Interdisciplinary physics.
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