DocumentCode :
75701
Title :
Investigating the Physics of Simultaneous Breakdown Events in High-Power-Microwave (HPM) Metamaterials With Multiresonant Unit Cells and Discrete Nonlinear Responses
Author :
Chien-Hao Liu ; Neher, Joel D. ; Booske, John H. ; Behdad, Nader
Author_Institution :
Dept. of Electr. & Comput. Eng., Univ. of Wisconsin-Madison, Madison, WI, USA
Volume :
42
Issue :
5
fYear :
2014
fDate :
May-14
Firstpage :
1255
Lastpage :
1264
Abstract :
Electromagnetic metamaterials offer a significant potential to enable new capabilities in many applications. Under high-power illumination, metamaterials and periodic structures experience internal breakdown, altering frequency response, and/or yielding thermal damage. Our prior research observed simultaneous breakdown discharges at two separate sites within a multiresonator metamaterial unit cell, even though the electric field intensities at one of the resonator sites should have been well below the threshold intensity required for breakdown. Here, we investigate three candidate mechanisms for the simultaneous breakdown discharges: energetic electrons, ultraviolet (UV) radiation, and vacuum UV (VUV) radiation. Experiments inserting different dielectric barriers between the two resonators of a multiresonator unit cell were able to selectively isolate the coupling influence of the candidate mechanisms. It was established that, VUV radiation from the discharge at the resonator with a lower electric field breakdown threshold causes simultaneous breakdown at the other resonator where the field intensities are otherwise too low to induce breakdown.
Keywords :
electric fields; microwave metamaterials; microwave resonators; breakdown discharges; dielectric barriers; discrete nonlinear responses; electric field; electromagnetic metamaterials; energetic electrons; high-power illumination; high-power-microwave metamaterials; internal breakdown; multiresonant unit cells; multiresonator metamaterial unit cell; multiresonator unit cell; periodic structures; resonator sites; thermal damage; ultraviolet radiation; vacuum UV radiation; Discharges (electric); Metamaterials; Periodic structures; Resonant frequency; Time-domain analysis; Topology; Breakdown; high-power microwaves (HPMs); localized discharge; metamaterials; periodic structures; ultraviolet (UV) radiation; vacuum ultraviolet (VUV) radiation; vacuum ultraviolet (VUV) radiation.;
fLanguage :
English
Journal_Title :
Plasma Science, IEEE Transactions on
Publisher :
ieee
ISSN :
0093-3813
Type :
jour
DOI :
10.1109/TPS.2014.2313873
Filename :
6787060
Link To Document :
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