Title :
A Circuit Model for the Design of Self-Excited EBG Resonator Antennas With Miniaturized Unit Cells
Author :
Hosseini, Mahmood ; Klymyshyn, David M. ; Wells, Garth
Author_Institution :
Dept. of Electr. & Comput. Eng., Univ. of Saskatchewan, Saskatoon, SK, Canada
Abstract :
A circuit model based on Bloch theory is introduced to simplify analysis and design of antennas composed of thick metal electromagnetic band-gap (EBG) cells with large intercell coupling capacitance. The cells are composed of thick metal patches periodically deployed on a metal-backed dielectric slab. Two versions of cells are presented that provide large intercell capacitance, one with narrow high aspect ratio (HAR) gaps between cells and the other with interdigitated gaps between cells. This large capacitance reduces the antenna resonance and dramatically miniaturizes the EBG cells. Three cascaded unit cells are used to demonstrate the applicability of the circuit model to characterize the recently introduced self-excited EBG resonator antenna. Full-wave numerical analysis and experimentation validate the robustness and accuracy of the model over large variations in electrical/physical cell dimensions.
Keywords :
antenna theory; dielectric resonator antennas; microwave antennas; photonic band gap; Bloch theory; HAR; antenna resonance; cascaded unit cells; circuit model; electrical-physical cell dimensions; full-wave numerical analysis; large intercell coupling capacitance; metal-backed dielectric slab; miniaturized unit cells; narrow high aspect ratio; self-excited EBG resonator design; thick metal electromagnetic band-gap cells; thick metal patches; Antenna radiation patterns; Capacitance; Integrated circuit modeling; Metals; Metamaterials; Periodic structures; Antenna miniaturization; Bloch; circuit model; electromagnetic band-gap; high aspect ratio; tall transmission line;
Journal_Title :
Antennas and Wireless Propagation Letters, IEEE
DOI :
10.1109/LAWP.2014.2333752