Title :
A Note on the Isolation Performance of Nonuniform Capacitively Loaded Mushroom-Type EBG Surfaces Within a Parallel Plate Waveguide
Author :
Panaretos, Anastasios H. ; Werner, Douglas H.
Author_Institution :
Dept. of Electr. Eng., Pennsylvania State Univ., University Park, PA, USA
Abstract :
A heuristic approach is presented to quantify the broadband isolation performance of nonuniform capacitively loaded electromagnetic bandgap (EBG) surfaces embedded inside a parallel plate waveguide (PPW). The approach is based on the effective mapping of the stop-band properties of the EBG to the attenuation factor (AF) of a homogeneous material slab. Subsequently, it is demonstrated that the electromagnetic wave propagation through the EBG-loaded PPW is equivalent to the propagation through a multilayered medium where each layer is characterized by a different AF. When these AFs are engineered so that their nonzero values spectrally overlap, a cumulative broadband attenuation effect can be obtained. Based on this interpretation, the broad bandgap properties that are characteristic of nonuniform capacitively loaded EBG surfaces are fully quantified.
Keywords :
parallel plate waveguides; photonic band gap; PPW; attenuation factor; cumulative broadband attenuation; multilayered medium; nonuniform capacitive loaded electromagnetic bandgap surfaces; nonuniform capacitive loaded mushroom-type EBG surfaces; parallel plate waveguide; Attenuation; Broadband communication; Capacitors; Loading; Metamaterials; Periodic structures; Ports (Computers); Capacitor; Electromagnetic bandgap (EBG) device; capacitor; electromagnetic bandgap (EBG) device; mushroom structure; parallel plate waveguide (PPW); stop-band; stopband;
Journal_Title :
Antennas and Propagation, IEEE Transactions on
DOI :
10.1109/TAP.2015.2477092