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Orbital Angular Momentum Generation Using Circular Ring Resonators in Radio Frequency |
Fu-Chun Mao1, Ming Huang1**, Cheng-Fu Yang1, Ting-Hua Li2, Jia-Lin Zhang3, Si-Yu Chen1 |
1School of Information Science and Engineering, Yunnan University, Kunming 650091 2Center of China Tobacco Yunnan Industrial Co. Ltd. Kunming 65023 3Radio Monitoring Center of Yunnan Province, Kunming 650228
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Cite this article: |
Fu-Chun Mao, Ming Huang, Cheng-Fu Yang et al 2018 Chin. Phys. Lett. 35 020701 |
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Abstract Electromagnetic field generators based on circular ring resonators, whose perimeters are integer times of equivalent wavelength, are well known to have attractive potential for producing radio vortexes carrying orbital angular momentum (OAM). We study the radiation characteristics of the generators based on radiation vector and antenna array theory. The behaviors of radiation patterns, field intensity and phase distribution are investigated in detail, and show classical features of OAM beams. The evolution of the generators performance versus the OAM state is also analyzed. The proposed generators can be realized by all kinds of microwave transmission lines, verified by two different prototypes. The discussions and conclusions drawn in this study are useful and meaningful for the radio OAM generator design.
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Received: 31 October 2017
Published: 23 January 2018
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PACS: |
07.57.Hm
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(Infrared, submillimeter wave, microwave, and radiowave sources)
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41.20.-q
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(Applied classical electromagnetism)
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42.50.Tx
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(Optical angular momentum and its quantum aspects)
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Fund: Supported by the National Natural Science Foundation of China under Grant No 61461052, the Specialized Research Fund for the Doctoral Program of Higher Education under Grant No 20135301110003, the Seventh of Yunnan University Graduate Student Scientific Research Project under Grant No ynuy201443, and the Doctoral Award for the Academic Newcomers (2014) of Yunnan Province under Grant No C6155501. |
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[1] | Willner A E, Huang H, Yan Y, Ren Y, Ahmed N, Xie G, Bao C, Li L, Cao Y, Zhao Z, Wang J, Lavery M P J, Tur M, Ramachandran S, Molisch A F, Ashrafi N and Ashrafi S 2015 Adv. Opt. Photon. 7 66 | [2] | Bozinovic N, Yue Y, Ren Y, Tur M, Kristensen P, Huang H, Willner A E and Ramachandran S 2013 Science 340 1545 | [3] | Wang J, Liu J, Lv X, Zhu L, Wang D, Li S, Wang A, Zhao Y, Long Y, Du J, Hu X, Zhou N, Chen S, Fang L and Zhang F 2015 European Conference on Optical Communication (Valencia Spain September 27–October 1 2015) p 1 | [4] | Parkvall S, Furuskär A and Dahlman E 2011 IEEE Commun. Mag. 49 84 | [5] | Edfors O and Johansson A J 2012 IEEE Trans. Antennas Propag. 60 1126 | [6] | Zhao N, Li X, Li G and Kahn J M 2015 Nat. Photon. 9 822 | [7] | Thidé B, Then H, Sjöholm J and Palmer K 2007 Phys. Rev. Lett. 99 087701 | [8] | Tamburini F, Mari E, Sponselli A and Thidé B 2012 New J. Phys. 14 033001 | [9] | Chen J J, Lu Q N, Dong F F, Yang J J and Huang M 2016 Opt. Express 24 11531 | [10] | Barbuto M, Trotta F, Bilotti F and Toscano A 2014 Prog. Electromagn. Res. 148 23 | [11] | Zheng S L, Hui X N, Jin X F, Chi H and Zhang X M 2015 IEEE Trans. Antennas Propag. 63 1530 | [12] | Hui X N, Zheng S L, Chen Y L, Hu Y P, Jin X F, Chi H and Zhang X M 2015 Sci. Rep. 5 10148 | [13] | Mao F C, Huang M, Li T H, Zhang J L and Yang C F 2017 Prog. Electromagn. Res. 160 19 | [14] | Knudsen H L 1953 Proc. IRE 41 781 | [15] | Anguita J A, Herreros J and Djordjevic I B 2014 IEEE Photon. J. 6 1 |
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