Title :
High-Directivity, Electrically Small, Low-Profile Near-Field Resonant Parasitic Antennas
Author :
Jin, Peng ; Ziolkowski, Richard W.
Author_Institution :
Signal Integrity Group, Broadcom Corp., Irvine, CA, USA
fDate :
7/4/1905 12:00:00 AM
Abstract :
A combination of metastructures is used to achieve high directivity, electrically small, low-profile, linear (LP) and circularly polarized (CP) near-field resonant parasitic (NFRP) antennas. A conformal metamaterial-inspired Egyptian axe dipole antenna is introduced, and its performance characteristics are presented. The electrically small, low-profile LP and CP high-directivity systems are achieved by amalgamating this NFRP antenna with an electromagnetic band-gap (EBG) structure, which acts as an artificial magnetic conductor (AMC) ground plane. As with all of the nonconformal metamaterial-inspired antennas, the designs of the driven and parasitic elements of these low-profile antennas are tailored to achieve nearly complete matching of the entire system to a 50- source without any matching network and to yield high radiation efficiencies.
Keywords :
dipole antennas; directive antennas; artificial magnetic conductor ground plane; circularly polarized near-field resonant parasitic antennas; conformal metamaterial-inspired Egyptian axe dipole antenna; electrically small near-field resonant parasitic antennas; electromagnetic bandgap structure; high directivity near-field resonant parasitic antennas; high radiation efficiency; linear polarized near-field resonant parasitic antennas; low-profile near-field resonant parasitic antennas; matching network; metastructures; nonconformal metamaterial-inspired antennas; Bandwidth; Dipole antennas; Gain; Global Positioning System; Metamaterials; Periodic structures; Antenna directivity; antenna efficiency; electrically small antennas (ESAs); electromagnetic band-gap (EBG) structures; metamaterials; metastructures;
Journal_Title :
Antennas and Wireless Propagation Letters, IEEE
DOI :
10.1109/LAWP.2012.2190030