Title :
Hilbert-Shaped Magnetic Waveguided Metamaterials for Electromagnetic Coupling Reduction of Microstrip Antenna Array
Author :
He-Xiu Xu ; Guang-Ming Wang ; Mei-qing Qi
Author_Institution :
Missile Inst., Air Force Eng. Univ., Xi´an, China
Abstract :
A novel single-negative magnetic waveguided metamaterial (MTM) is initially proposed based on the Hilbert-shaped complementary electric inductive-capacitive resonator. The MTM element is highly compact due to the Hilbert space-filling curves which considerably enhance the current path in the ground, and exhibits a bandgap attributing to the negative permeability in the vicinity of magnetic resonance. Taking the advantage of these two features, a microstrip antenna array is then designed, fabricated, and measured by embedding a 5×1 array of the well-engineered MTM elements between two closely spaced (λo/8.08) H-plane coupled rectangular patches. Both numerical and experimental results indicate a mutual coupling reduction of more than 9.7 dB. The proposed prescription with electrically small dimensions and high decoupling efficiency opens an avenue to new types of antennas with super performances.
Keywords :
electromagnetic coupling; electromagnetic metamaterials; magnetic permeability; magnetic resonance; metamaterial antennas; microstrip antenna arrays; microwave resonators; rectangular waveguides; Hilbert space-filling curves; Hilbert-shaped complementary electric inductive-capacitive resonator; Hilbert-shaped magnetic waveguided metamaterials; MTM element; bandgap; closely spaced H-plane coupled rectangular patches; current path; decoupling efficiency; electromagnetic coupling reduction; magnetic resonance; microstrip antenna array; mutual coupling reduction; negative permeability; single-negative magnetic waveguided metamaterial; Antenna measurements; Arrays; Magnetic resonance; Microstrip antenna arrays; Mutual coupling; Antenna arrays; fractals; magnetic materials; metamaterials; mutual coupling reduction;
Journal_Title :
Magnetics, IEEE Transactions on
DOI :
10.1109/TMAG.2012.2230272