Showing posts with label Sasmita Dash. Show all posts
Showing posts with label Sasmita Dash. Show all posts

Wednesday, May 20, 2020

Abstract-Behavior of Graphene Based Planar Antenna at Microwave and Terahertz Frequency


Sasmita Dash, Amalendu Patnaik.

Fig. 3. Schematic of graphene based metal planar microstrip antennaFig. 1. Graphene (a) Hexagonal structure, and (b) Band structure

https://www.sciencedirect.com/science/article/pii/S1569441020301280

In this paper, the behavior of radiation including the reconfiguration capability of planar metallic antenna structure using graphene in the microwave (MW) and terahertz (THz) frequency range is investigated. Different from the conventional reconfigurable metal planar antenna and graphene plasmonic THz antenna designs, this planar microstrip metal antenna structure is realized by placing a graphene layer in between the copper radiator and silicon dielectric. The design is inspired by the tunable conductivity behavior of graphene that can be achieved by applying a DC bias voltage across it. The antenna performance parameters such as frequency reconfiguration, VSWR, input impedance, efficiency, and radiation pattern are studied in both MW and THz frequencies. The radiation properties of the proposed antenna are studied at both MW and THz spectra by tuning the graphene conductivity via Fermi energy. It is found that, at MW and THz frequency, with respect to the unbiased condition, the antenna radiation efficiency is enhanced from 16% to 66% and from 26% to 69%, respectively, with the increase of Fermi energy from 0.5 eV to 0.8 eV. The efficiency of the antenna at both MW and THz can be further improved with the rise of the Fermi level of graphene. Moreover, the graphene based planar metal antenna structure provides easy frequency reconfiguration in the THz band due to its unique electronic and plasmonic properties at this frequency range, whereas, the presence of the graphene parasitic layer below metal radiator improves the impedance matching and radiation of the antenna at MW band.

Monday, September 9, 2019

Abstract-Sub-wavelength Graphene Planar nanoantenna for THz Application



Sasmita Dash, Amalendu Patnaik,

https://www.sciencedirect.com/science/article/pii/S2214785319319716

Owing to unique electronic and plasmonic properties at terahertz (THz) band, two-dimensional nano material graphene make it easy for the design of highly miniaturized ultra-wideband (UWB) reconfigurable THz antenna with simple nano structure at subwavelength scale. In this paper, a sub-wavelength miniaturized UWB reconfigurable graphene circular patch nanoantenna at THz band is reported. The simple structured graphene circular patch nanoantenna provides ultra-wideband of impedance bandwidth of 370%. The propagation of SPP waves in graphene THz antenna enables high miniaturization at THz band. At resonant frequency 0.75 THz, SPP wavelength λSPP of the antenna is 10 times smaller than free space wavelength λ0. Broad side radiation pattern with lower back lobe radiation is found at resonant frequency of the antenna. Moreover, frequency reconfiguration in the antenna is easily achievable by applying external voltage via Fermi energy of graphene. For a comparison propose, copper circular patch nanoantenna of the same dimension has been modelled in this work. Copper circular patch nanoantenna resonates at higher frequency 1.15 THz and provides a very narrow bandwidth. Compared to conventional copper metal antenna, graphene nanoantenna enables high miniaturization, UWB behavior, and easy reconfiguration. The proposed graphene nanoantenna can be promising for UWB THz applications.