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首页> 外文期刊>Physica, E. Low-dimensional systems & nanostructures >Near- and mid-infrared plasmonic Fano resonances induced by different geometric configurations in subwavelength nanostructures
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Near- and mid-infrared plasmonic Fano resonances induced by different geometric configurations in subwavelength nanostructures

机译:近红外等离子体扇形围栏源自亚体纳米结构中的不同几何配置诱导

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摘要

Plasmonic Fano resonances, which result from the interaction between two plasmon modes in subwavelength nanostructures, provide a unique way to realize promising applications in light manipulation technology. Here, we investigate the infrared plasmonic Fano resonances of subwavelength periodic hole arrays with different geometric configurations in a metallic film containing Z-shaped hole arrays, cross-shaped aperture arrays, and gammadion-shaped hole arrays (GSHAs). Specifically, the infrared plasmonic Fano resonance in the GSHA structure, without considering rotational symmetry breaking, can be interpreted as stemming from the coupling between the bonding and antibonding localized surface plasmon resonance modes. By considering the rotational symmetry breaking in the GSHA structure, it is possible to actualize plasmonic doubleand triple-Fano resonances in the near-infrared or mid-infrared region. Moreover, the plasmonic doubleand triple-Fano resonances between the firstand second-NIR optical windows, as well as in the mid-infrared region can be controlled by appropriately regulating the related length of the arms in the GSHA structure. Our results show that infrared plasmonic Fano resonances might pave the way for the exploration of applications in optical communications and information processing.
机译:质子扇形共振,其由亚波长纳米结构中的两种等离子体模式之间的相互作用导致,提供了在光操作技术中实现有前途的应用的独特方式。这里,我们研究了含有Z形孔阵列的金属膜中的不同几何构造的子波长周期孔阵列的红外等离子孔阵列,横形孔径阵列和粘膜形孔阵列(GSHA)。具体地,在GSHA结构中的红外等离子体FANO共振,而不考虑旋转对称性断裂,可以解释为串联粘合和抗抗抗体局部等离子体共振模式之间的耦合。通过考虑在GSHA结构中断开的旋转对称性,可以实现近红外或中红外区域中的等离子体双扇形三扇形共振。此外,通过适当地调节GSHA结构中的臂的相关长度,可以控制第一和第二导壁光学窗之间的等离子体双扇形三扇形谐振,以及中红外区域。我们的研究结果表明,红外等离子体Fano共振可能会为光学通信和信息处理中的应用探讨探讨。

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  • 作者单位

    Univ South China Sch Elect Engn Hunan Prov Key Lab Ultrafast Micro Nano Technol &

    Hengyang 421001 Peoples R China;

    Univ South China Sch Elect Engn Hunan Prov Key Lab Ultrafast Micro Nano Technol &

    Hengyang 421001 Peoples R China;

    Univ South China Sch Elect Engn Hunan Prov Key Lab Ultrafast Micro Nano Technol &

    Hengyang 421001 Peoples R China;

    Univ South China Sch Elect Engn Hunan Prov Key Lab Ultrafast Micro Nano Technol &

    Hengyang 421001 Peoples R China;

    Univ South China Sch Elect Engn Hunan Prov Key Lab Ultrafast Micro Nano Technol &

    Hengyang 421001 Peoples R China;

    Univ South China Sch Elect Engn Hunan Prov Key Lab Ultrafast Micro Nano Technol &

    Hengyang 421001 Peoples R China;

    Chinese Acad Sci Inst Phys Beijing Natl Lab Condensed Matter Phys Beijing 100190 Peoples R China;

    Univ South China Sch Elect Engn Hunan Prov Key Lab Ultrafast Micro Nano Technol &

    Hengyang 421001 Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 半导体物理学;特种结构材料;
  • 关键词

    Plasmonic Fano resonances; Rotational symmetry breaking; Localized surface plasmon resonance;

    机译:等离子体Fano共振;旋转对称破碎;局部表面等离子体共振;

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