4.7 Article

Ultra-wideband filtering of spoof surface plasmon polaritons using deep subwavelength planar structures

期刊

SCIENTIFIC REPORTS
卷 6, 期 -, 页码 -

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NATURE PUBLISHING GROUP
DOI: 10.1038/srep37605

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资金

  1. National Science Foundation of China [51567017, 61171024, 61171026, 61302018, 61401089, 61571117, 61501112, 61138001]
  2. Physical Electronic Key Discipline of Guizhou Province [ZDXK201535]
  3. Key Project of the Education Department of Guizhou Province [2013174]
  4. Key Laboratory of the Reliability of Power Components and Devices of Guizhou Province [KFJJ201505]
  5. Recruitment Program of Liupanshui Normal University [LPSSYKYJJ201403]
  6. Outstanding Young Scientist Cultivation Program of Guizhou Province [201522]
  7. Joint Science Foundation of Guizhou Province [LH20147448]
  8. Key Laboratory of Opt-electrical Information Technology of Liupanshui City [52020201420205]

向作者/读者索取更多资源

Novel ultra-wideband filtering of spoof surface plasmon polaritons (SPPs) is proposed in the microwave frequency using deep subwavelength planar structures printed on thin and flexible dielectric substrate. The proposed planar SPPs waveguide is composed of two mirror-oriented metallic corrugated strips, which are further decorated with parallel-arranged slots in the main corrugated strips. This compound structure provides deep subwavelength field confinement as well as flexible parameters when employed as a plasmonic waveguide, which is potential to construct miniaturization. Using momentum and impedance matching technology, we achieve a smooth conversion between the proposed SPPs waveguide and the conventional transmission line. To verify the validity of the design, we fabricate a spoof SPPs filter, and the measured results illustrate excellent performance, in which the reflection coefficient is less than -10 dB within the -3 dB passband from 1.21 GHz to 7.21 GHz with the smallest insertion loss of 1.23 dB at 2.21 GHz, having very good agreements with numerical simulations. The ultra-wideband filter with low insertion loss and high transmission efficiency possesses great potential in modern communication systems.

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