| Literature DB >> 30087374 |
Xiao-Lan Tang1,2, Qingfeng Zhang3, Sanming Hu4, Shangkun Ge1,5, Yifan Chen1,6, Hao Yu1.
Abstract
Spoof/designer surface plasmon polaritons (SPP) and Goubau line belong to the same category of single-conductor surface waveguide. They feature easy integration and high field confinement capability, and hence are good candidates for wave guiding and radiating at terahertz frequencies. Here, we propose a momentum-reconfigurable Goubau meta-line radiator that is capable of digitally steering its beam at a fixed frequency, in contrast to conventional SPP or Goubau line radiators relying on changing frequencies to steer beams. By periodically loading switchable meta-lines with ON and OFF states along the Goubau line, the modulation period and hence the momentum of Goubau line radiators can be dynamically controlled. The proposed Goubau line radiator is able to steer the main beam at a given frequency by independently switching ON or OFF each unit cell. As a proof of concept, we use line connection and disconnection to mimic ON and OFF state of the switch, respectively. Several radiators, representing different switching coding combinations, are fabricated and experimentally validated. Although this momentum-reconfigurable Goubau meta-line radiator is demonstrated at microwave frequency, it can be easily extended to terahertz frequencies.Entities:
Year: 2018 PMID: 30087374 PMCID: PMC6081474 DOI: 10.1038/s41598-018-29507-2
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1(a) 3D schematic view of a planar Goubau line. (b) Structure description of the CPW-to-Goubau-line tapered transition.
Figure 2(a) Dispersion curve of the planar Goubau line of different line width w(l = 5 mm, h = 1.52 mm and t = 1.8 um) on a Rogers 4003C substrate (ε = 3.38, tan δ = 0.0027). (b) The calculated beam scanning angles of the periodically modulated Goubau line radiators with different modulation periodicity p.
Figure 3Schematic description of a modulated periodic radiator based on Goubau line with switchable meta-lines for beam steering.
Figure 4The simulated 3D radiation patterns of the modulated radiators of different unit cells at 8.5 GHz. (a) p2 in switch coding “11000”. (b) p3 in switch coding “110000”. (c) p4 in switch coding “1110000”.
Figure 5Fabricated prototypes of reconfigurable radiators with their physical dimensions. (a) p1 in switch coding “1100”. (b) p2 in switch coding “11000”. (c) p3 in switch coding “110000”. (d) p4 in switch coding “1110000”. (e) The photograph of experimental setup for radiation pattern measurement.
Figure 6Performance of the modulated radiators for period p2 in switch coding “11000”. (a) The simulated and measured scattering parameters. (b) The measured far-field E-plane radiation patterns.
Figure 7Performance comparison of the modulated radiators of different modulation periods in Fig. 5 at 8.5 GHz. (a) The measured scattering parameters. (b) The simulated far-field E-plane radiation patterns. (c) The normalized E-plane radiation patterns in measurement. (d) The measured and simulated gains and beam angles.