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调制电容耦合非对称太赫兹超材料中的基模共振

Modulating Fundamental Resonance in Capacitive Coupled Asymmetric Terahertz Metamaterials.

作者信息

Rao S Jagan Mohan, Srivastava Yogesh Kumar, Kumar Gagan, Roy Chowdhury Dibakar

机构信息

Department of Physics, Indian Institute of Technology Guwahati, Guwahati, 781039, Assam, India.

Division of Physics and Applied Physics, School of Physical and Mathematical Sciences, Nanyang Technological University, Singapore, 637371, Singapore.

出版信息

Sci Rep. 2018 Nov 13;8(1):16773. doi: 10.1038/s41598-018-34942-2.

Abstract

In this work, we experimentally investigate near-field capacitive coupling between a pair of single-gap split ring resonators (SRRs) in a terahertz metamaterial. The unit cell of our design comprises of two coupled SRRs with the split gaps facing each other. The coupling between two SRRs is examined by changing the gap of one resonator with respect to the other for several inter resonator separations. When split gap size of one resonator is increased for a fixed inter-resonator distance, we observe a split in the fundamental resonance mode. This split ultimately results in the excitation of narrow band low frequency resonance mode along with a higher frequency mode which gets blue shifted when the split gap increases. We attribute resonance split to the excitation of symmetric and asymmetric modes due to strong capacitive or electric interaction between the near-field coupled resonators, however blue shift of the higher frequency mode occurs mainly due to the reduced capacitance. The ability of near-field capacitive coupled terahertz metamaterials to excite split resonances could be significant in the construction of modulator and sensing devices beside other potential applications for terahertz domain.

摘要

在这项工作中,我们对太赫兹超材料中一对单间隙分裂环谐振器(SRR)之间的近场电容耦合进行了实验研究。我们设计的单元胞由两个耦合的SRR组成,其分裂间隙彼此相对。通过针对几个谐振器间距改变一个谐振器相对于另一个谐振器的间隙,来研究两个SRR之间的耦合。当一个谐振器的分裂间隙尺寸在固定的谐振器间距下增大时,我们观察到基模共振出现分裂。这种分裂最终导致窄带低频共振模式以及高频模式的激发,当分裂间隙增大时,高频模式会发生蓝移。我们将共振分裂归因于近场耦合谐振器之间强电容或电相互作用导致的对称和非对称模式的激发,然而高频模式的蓝移主要是由于电容减小。近场电容耦合太赫兹超材料激发分裂共振的能力,除了在太赫兹领域的其他潜在应用外,在调制器和传感设备的构建中可能具有重要意义。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/cb37/6233158/3cf6af9ec490/41598_2018_34942_Fig1_HTML.jpg

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