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Updated: May 22, 2026

Fabrication of Nanopillar-Based Split Ring Resonators for Displacement Current Mediated Resonances in Terahertz Metamaterials
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Fabrication of Nanopillar-Based Split Ring Resonators for Displacement Current Mediated Resonances in Terahertz Metamaterials

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Fabrication of three dimensional split ring resonators by stress-driven assembly method.

Che Chin Chen1, Chih Ting Hsiao, Shulin Sun

  • 1Instrument Technology Research Center, National Applied Research Laboratory, Hsinchu 30076, Taiwan.

Optics Express
|April 27, 2012
PubMed
Summary

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We developed a self-assembly method for 3D metamaterials using metal stress to erect split ring resonators (SRRs). This technique enables novel excitation of SRR eigen-modes for advanced applications.

Area of Science:

  • Metamaterials Science
  • Nanotechnology
  • Condensed Matter Physics

Background:

  • Fabricating three-dimensional (3D) metamaterials, particularly split ring resonators (SRRs), presents significant challenges.
  • Existing methods often lack precise control over the 3D structure required for specific electromagnetic responses.

Purpose of the Study:

  • To demonstrate a novel self-assembly strategy for fabricating 3D metamaterials.
  • To enable the precise formation of 3D curving prongs in SRRs.
  • To investigate the electromagnetic properties and excitation modes of these 3D SRRs.

Main Methods:

  • Utilized a self-assembly strategy driven by metal stress force.
  • Employed appropriate thin film parameters to control the erection of SRR prongs.

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Last Updated: May 22, 2026

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  • Performed finite element method (FEM) calculations to determine transmittance spectra and field patterns.
  • Analyzed resonance modes and excitation conditions.
  • Main Results:

    • Successfully fabricated 3D SRRs with desired curving prongs via self-assembly.
    • Calculated resonance modes and corresponding transmittance spectra and field patterns.
    • Identified that eigen-modes are excited by normal illumination with polarization parallel to erected SRRs, differing from planar SRRs.

    Conclusions:

    • The demonstrated self-assembly strategy offers a promising fabrication process for 3D metamaterials.
    • This method allows for the creation of tailored 3D SRRs with unique electromagnetic properties.
    • Opens new avenues for the application of 3D metamaterials in various fields.