Development and Analysis of Metamaterial Based Structures with Improved Performance for Microwave Applications
Loading...
Date
item.page.authors
Journal Title
Journal ISSN
Volume Title
Publisher
Abstract
etamaterials are specially engineered materials which derive their unique properties from
newlinecarefully designed unit cells. It is the geometric shape and design that is responsible for its
newlineunusual characteristics rather than the chemical composition. The maximum size of unit cell is
newlinekept less than the wavelength (and#120582;) of incident radiation, particularly, in microwave engineering
newlinedomain. These subwavelength dimensions of the unit cell result in flexibility. to mount over
newlinesurfaces ranging from small to large in area. Moreover, the sub-wavelength size makes the
newlinereflection and refraction phenomenon more significant than the diffraction and scattering. This
newlinecapability allows to create materials with negative or near zero refractive index by manipulating
newlinethe values of effective permittivity (and#120576;and#119890;and#119891;and#119891;) and permeability (and#120583;and#119890;and#119891;and#119891;). These extraordinary
newlineproperties, which are unachievable with traditional methods, helps in the development of
newlinecompact, high-performance structure that outperforms their conventional counterparts.
newlineMetamaterials can have both negative permittivity and negative permeability; therefore, they are
newlinereferred as Double Negative (DNG) material. It represents a fascinating frontier in the realm of
newlinemicrowave applications. In microwave technology, metamaterial structure includes absorbers
newlinethat trap and dissipate electromagnetic radiation efficiently, advanced antennas with enhanced
newlinebandwidth and efficiency, metamaterial lenses for sensors, meta surfaces for phase shifters and
newlinereflector arrays, tunable and reconfigurable microwave devices, waveguides and transmission
newlineline for high frequency microwave circuits, compact and efficient microwave filters and
newlinefrequency selective surfaces, lenses with unprecedented precision and efficiency for medical
newlineimaging, security screening and non-destructive testing applications. As research and
newlinedevelopment in metamaterials continue to evolve, their impact on microwave applications
newlinepromises to revolutionize telecommunications, sensing technologies and beyond
newline