Performance enhancement of planar antennas for WLAN applications
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Abstract
In revolutionary wireless communication frameworks, achieving high
newlinedata transmission capabilities is a highly coveted attribute, concomitant with
newlinethe crucial requirement of integration with the prevailing communication
newlineinfrastructure. This means that these antennas must possess the capability to
newlineresonate at multiple resonant frequencies. The geometric parameters of
newlinebroadband and ultra-wideband antennas can be manipulated to enable
newlineresonance at single or multiple frequencies. Furthermore, this design strategy
newlinecan be harnessed to augment the functional bandwidth of the antenna system.
newlinePlanar antenna architectures are crucial in contemporary communication
newlinesystems because of their miniaturized form, seamless integration, and multi
newlinefunctionality. Several design approaches have been explored to facilitate the
newlinedevelopment of multiband capabilities in planar antennas, including the
newlineimplementation of fractals, metamaterials, loading slots and modified ground
newlineplane structures.
newlineDue to the necessity of meeting the demands of modern radar and
newlinesatellite technologies, high-gain antenna development is being the subject of
newlineintense investigation in current ages. Modern wireless communication
newlinenetworks with high speeds are particularly suited for high-gain antenna
newlinesystems because they provide a design topology that is simpler and easier to
newlineconstruct than complicated feeding network-based array antennas. One
newlineapproach that has shown promise for realizing large waveguide-dependent
newlinecircuits on planar substrates is substrate-integrated waveguide technology,
newlinewhich will enable applications using millimeter-wave and high-frequency
newlinemicrowave radiation.
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