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Electromagnetic Vortices


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      85 85 Zhu, L., Wang, A., Chen, S. et al. (2018). Orbital angular momentum mode multiplexed transmission in heterogeneous few‐mode and multi‐mode fiber network. Optics Letters 43 (8): 1894–1897.

      86 86 Li, S. and Wang, J. (2013). Multi‐orbital‐angular‐momentum multi‐ring fiber for high‐density space‐division multiplexing. IEEE Photonics Journal 5 (5): 7101007–7101007.

      87 87 Li, S. and Wang, J. (2015). Supermode fiber for orbital angular momentum (OAM) transmission. Optics Express 23 (14): 18736–18745.

      88 88 Papathanasopoulos, A., Rahmat‐Samii, Y., Garcia, N., and Chisum, J.D. (2020). A novel collapsible flat‐layered metamaterial gradient‐refractive‐index (GRIN) lens antenna. IEEE Transactions on Antennas and Propagation 68 (3): 1312–1321.

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      93 93 Mari, E., Spinello, F., Oldoni, M. et al. (2014). Near‐field experimental verification of separation of OAM channels. IEEE Antennas and Wireless Propagation Letters 14: 556–558.

      94 94 Byun, W.J., Kim, K.S., Kim, B.S. et al. (2016). Multiplexed Cassegrain reflector antenna for simultaneous generation of three orbital angular momentum (OAM) modes. Scientific Reports 6: 27339.

      95 95 Cheng, L., Hong, W., and Hao, Z.‐C. (2014). Generation of electromagnetic waves with arbitrary orbital angular momentum modes. Scientific Reports 4 (1): 1–5.

      96 96 Qin, F., Wan, L., Li, L. et al. (2018). A transmission metasurface for generating OAM beams. IEEE Antennas and Wireless Propagation Letters 17 (10): 1793–1796.

      97 97 Hui, X., Zheng, S., Hu, Y. et al. (2015). Ultralow reflectivity spiral phase plate for generation of millimeter‐wave OAM beam. IEEE Antennas and Wireless Propagation Letters 14: 966–969.

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      100 100 Niemiec, R., Brousseau, C., Mahdjoubi, K. et al. (2014). Characterization of an OAM flat‐plate antenna in the millimeter frequency band. IEEE Antennas and Wireless Propagation Letters 13: 1011–1014.

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      102 102 Bai, Q., Tennant, A., and Allen, B. (2014). Experimental circular phased array for generating OAM radio beams. Electronics Letters 50 (20): 1414–1415.

      103 103 Liu, K., Liu, H., Qin, Y. et al. (2016). Generation of OAM beams using phased array in the microwave band. IEEE Transactions on Antennas and Propagation 64 (9): 3850–3857.

      104 104 Kang, L., Li, H., Zhou, J. et al. (2019). A mode‐reconfigurable orbital angular momentum antenna with simplified feeding scheme. IEEE Transactions on Antennas and Propagation 67 (7): 4866–4871.

      105 105 Liu, Q., Chen, Z.N., Liu, Y. et al. (2018). Circular polarization and mode reconfigurable wideband orbital angular momentum patch array antenna. IEEE Transactions on Antennas and Propagation 66 (4): 1796–1804.

      106 106 Zhao, M., Gao, X., Xie, M. et al. (2018). Generation of coupled radio frequency orbital angular momentum beam with an optical‐controlled circular antenna array. Optics Communications 426: 126–129.

      107 107 Gong, Y., Wang, R., Deng, Y. et al. (2017). Generation and transmission of OAM‐carrying vortex beams using circular antenna array. IEEE Transactions on Antennas and Propagation 65 (6): 2940–2949.

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