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Ultra-thin and light-weight spoof surface plasmon polariton coupler achieved by broadside coupled split ring resonators |
Ya Fan(范亚), Jia-Fu Wang(王甲富), Hua Ma(马华), Yong-Feng Li(李勇峰), Ming-De Feng(冯明德), Shao-Bo Qu(屈绍波) |
Department of Basic Sciences, Air Force Engineering University, Xi'an 710051, China |
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Abstract Low profile and light weight are very important for practical applications of a spoof surface plasmon polariton (SSPP) coupler, especially at low frequencies. In this paper, we propose and design an ultra-thin, light-weight SSPP coupler based on broadside coupled split ring resonators (BC-SRRs). The size of BC-SRR can be far less than λ/100 and can extremely well control the reflective phases within a subwavelength thickness. Due to the broadside capacitive coupling, the electrical size of BC-SRR is dramatically reduced to guarantee the ultra-thin thickness of the SSPP coupler. The weight of the SSPP coupler is reduced by a low occupation ratio of BC-SRR in the unit cell volume. As an example, a C-band SSPP coupler composed of phase gradient BC-SRRs is designed, fabricated, and measured. Due to the ultra-small size and low occupation ratio of BC-SRRs, the thickness of the coupler is λ/12 and the surface density is only 0.98 kg/m2. Both simulation and experiment results verify that the coupler can achieve high-efficiency SPP coupling at 5.27 GHz under normal incidence.
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Received: 19 April 2018
Revised: 04 June 2018
Accepted manuscript online:
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PACS:
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03.65.Vf
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(Phases: geometric; dynamic or topological)
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41.20.Jb
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(Electromagnetic wave propagation; radiowave propagation)
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81.05.Xj
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(Metamaterials for chiral, bianisotropic and other complex media)
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Fund: Project supported by the National Natural Science Foundation of China (Grant Nos. 61331005, 61471388, and 61501503). |
Corresponding Authors:
Jia-Fu Wang, Shao-Bo Qu
E-mail: wangjiafu1981@126.com;qushaobo@mail.xjtu.edu.cn
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Cite this article:
Ya Fan(范亚), Jia-Fu Wang(王甲富), Hua Ma(马华), Yong-Feng Li(李勇峰), Ming-De Feng(冯明德), Shao-Bo Qu(屈绍波) Ultra-thin and light-weight spoof surface plasmon polariton coupler achieved by broadside coupled split ring resonators 2018 Chin. Phys. B 27 100304
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