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Tailoring electromagnetic responses in terahertz superconducting metamaterials

Tailoring electromagnetic responses in terahertz superconducting metamaterials
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摘要 Superconducting terahertz metamaterials have attracted significant interest due to low loss, efficient resonance switching and large-range frequency tunability. The super conductivity in the metamaterials dramatically reduces ohmic loss and absorption to levels suitable for novel devices over a broad range of electromagnetic spectrum. Most metamaterials utilize subwavelength-scale split-ring resonators as unit building blocks, which are proved to support fundamental inductive-capacitive reso- nance, to achieve unique resonance performance. We presented a review of terahertz superconducting metama- terials and their implementation in multifunctional devices. We began with the recent development of superconducting metamaterials and their potential applications in control- ling and manipulating terahertz waves. Then we explored the tuning behaviors of resonance properties in several typical, actively controllable metamaterials through integrating active components. Finally, the ultrafast dynamic nonlinear response to high intensity terahertz field in the superconducting metamaterials was presented. Superconducting terahertz metamaterials have attracted significant interest due to low loss, efficient resonance switching and large-range frequency tunability. The super conductivity in the metamaterials dramatically reduces ohmic loss and absorption to levels suitable for novel devices over a broad range of electromagnetic spectrum. Most metamaterials utilize subwavelength-scale split-ring resonators as unit building blocks, which are proved to support fundamental inductive-capacitive reso- nance, to achieve unique resonance performance. We presented a review of terahertz superconducting metama- terials and their implementation in multifunctional devices. We began with the recent development of superconducting metamaterials and their potential applications in control- ling and manipulating terahertz waves. Then we explored the tuning behaviors of resonance properties in several typical, actively controllable metamaterials through integrating active components. Finally, the ultrafast dynamic nonlinear response to high intensity terahertz field in the superconducting metamaterials was presented.
出处 《Frontiers of Optoelectronics》 CSCD 2015年第1期44-56,共13页 光电子前沿(英文版)
关键词 superconducting metamaterial terahertz active metamaterial superconducting metamaterial, terahertz,active metamaterial
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