首页> 外文期刊>Journal of physical chemistry letters >Static and Dynamic Near-Field Measurements of High-Order Plasmon Modes Induced in a Gold Triangular Nanoplate
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Static and Dynamic Near-Field Measurements of High-Order Plasmon Modes Induced in a Gold Triangular Nanoplate

机译:金三角形纳米板诱导的高阶等离子模式的静态和动态近场测量

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摘要

Precise understanding of the spatiotemporal characteristics of plasmons is essential for the development of applications of plasmonic nanoparticles. In this study, we investigated the spatiotemporal properties of high-order plasmon modes induced in a gold triangular nanoplate by static and dynamic near-field measurements. The near-field transmission measurements revealed that in-plane and out-of-plane polarized plasmon modes were simultaneously excited and these modes spectroscopically and spatially overlapped. The superposition of these modes was visualized in the near-field two-photon excitation image of the nanoplate. We performed time-resolved autocorrelation measurements on the nanoplate and found that the correlation width was broader than the excitation pulse due to the plasmon dephasing process. From the correlation width map of the nanoplate, we experimentally demonstrated that the out-of-plane plasmon mode exhibits a longer dephasing time than the in-plane plasmon mode. These findings indicate that the out-of-plane mode is desirable for improving the performance of plasmons in various applications.
机译:精确了解等离子体的时空特性对于血浆纳米颗粒的应用是必不可少的。在这项研究中,我们通过静态和动态近场测量研究了在金三角形纳米板中诱导的高阶等离子体模式的时空性质。近场透射测量显示,平面内和外平面偏振等离子体模式同时激发,并且这些模式光谱和空间上重叠。这些模式的叠加在纳米板的近场两光子激发图像中被可视化。我们在纳米板上进行了时间分辨的自相关测量,发现由于等离子体去除过程引起的相关宽度比激发脉冲更宽。从纳米板的相关宽度图来看,我们实验证明外平面的等离子体模式表现出比面内等离子体模式更长的相位时间。这些发现表明,外平面模式是期望改善各种应用中等离子体的性能的。

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    Research Institute for Science and Engineering and Department of Chemistry and Biochemistry School of Advanced Science and Engineering Waseda University;

    Research Institute for Science and Engineering and Department of Chemistry and Biochemistry School of Advanced Science and Engineering Waseda University;

    Research Institute for Science and Engineering and Department of Chemistry and Biochemistry School of Advanced Science and Engineering Waseda University;

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  • 正文语种 eng
  • 中图分类 物理化学(理论化学)、化学物理学;
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