| Literature DB >> 27886230 |
Jordi Bonache1, Gerard Zamora1, Ferran Paredes1, Simone Zuffanelli1, Pau Aguilà1, Ferran Martín1.
Abstract
The definition of a precise illumination region is essential in many applications where the electromagnetic field should be confined in some specific volume. By using conventional structures, it is difficult to achieve an adequate confinement distance (or volume) with negligible levels of radiation leakage beyond it. Although metamaterial structures and metasurfaces are well-known to provide high controllability of their electromagnetic properties, this feature has not yet been applied to solve this problem. We present a method of electromagnetic field confinement based on the generation of evanescent waves by means of metamaterial structures. With this method, the confinement volume can be controlled, namely, it is possible to define a large area with an intense field without radiation leakage. A prototype working in the microwave region has been implemented, and very good agreement between the measurements and the theoretical prediction of field distribution has been obtained.Entities:
Year: 2016 PMID: 27886230 PMCID: PMC5123569 DOI: 10.1038/srep37739
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1Metamaterial structure functional at the UHF frequency band.
Photograph of (A) top layer and (B) bottom layer of the fabricated device, which presents a total length of 31 cm (0.9 times the free-space wavelength at 867 MHz). (C) Unit cell of the proposed structure. The light and dark grey colors represent copper traces in the top and bottom layer, respectively. The dimensions of the unit cell are l = 34.57 mm (0.1 times the free-space wavelength at 867 MHz) and w = 100 mm (0.29 times the free-space wavelength at 867 MHz), the external ring diameter is d = 32 mm, the width of the rings and the separation between them are 1.35 mm, the width of the longitudinal slot is s = 0.2 mm, the length and width of the transversal slot are 12.55 mm and 0.94 mm, respectively, and the width of the metallic connections in the slot is a = 21 mm. (D) Dispersion relation of the structure retrieved from the measured S parameters. Negative sign in βl denotes a left-handed mode operation.
Figure 2Experimental results.
Measured (discrete points) and theoretical prediction (continuous line) of the electric field in the z-direction versus distance. (A) Results at 867 MHz expressed in linear. The theoretical calculation was obtained using the exponential decay factor of the field given by Equation (1) and taking as amplitude the first measured value (2 cm away from the structure) (B) Results at 850 MHz expressed in dB. (C) Comparison of the field decay at different frequencies in dB.