Performance enhancement for antipodal Vivaldi antenna modulated by a high-permittivity metasurface lens

2021 ◽  
Vol 22 (12) ◽  
pp. 1655-1665
Author(s):  
Shaopeng Pan ◽  
Mingtuan Lin ◽  
Lin Qi ◽  
Pan Chen ◽  
Yang Feng ◽  
...  
IEEE Access ◽  
2020 ◽  
Vol 8 ◽  
pp. 45774-45796 ◽  
Author(s):  
Amruta S. Dixit ◽  
Sumit Kumar

2018 ◽  
Vol 2 (1) ◽  
Author(s):  
Himanshu Monga

In this paper, a computer aided design of Vivaldi Antenna is developed which is used to study the effect of different parameters such as rate of opening of exponential slot and size of the radius of circular slot of the Vivaldi Antenna. The proposed design resulted in enhancement of gain and reduction in reflection losses. COMSOL Multi physics simulator is used to design the proposed Vivaldi antenna.


2017 ◽  
Vol 07 (03) ◽  
pp. 1750018 ◽  
Author(s):  
Rabiaa Herzi ◽  
Moufida Bouslama ◽  
Ali Gharsallah

In this paper, we investigate the influence of higher permittivity dielectric director on the radiation performances of an antipodal Vivaldi antenna. An elliptical dielectric director with high permittivity is inserted in an antipodal Vivaldi antenna aperture in order to ameliorate the radiation characteristics of the antenna. Due to the capacity of elevated permittivity dielectric to confine and guide energy in the desired direction, an increment of 4[Formula: see text]dB in the gain of the antenna is obtained. This antenna, which covers an ultra-wide frequency band of 146.8% from 2.3[Formula: see text]GHz to 15[Formula: see text]GHz, has approximately regular radiation patterns with reduced side lobe level and narrower beamwidth. In the interest to achieve radar application necessities, the proposed antenna is exploited to develop an antenna array which consists of four connected elements. Adding dielectric directors can significantly enhance the radiations characteristics of the antenna and reduce the mutual coupling inter-elements. So using four elements with dielectric director in the antenna array can achieve the same results obtained with eight elements without directors. This can decrease the used number of elements that form the antenna array.


Author(s):  
Anindita Bhattacharjee ◽  
Abhirup Bhawal ◽  
Anirban Karmakar ◽  
Anuradha Saha ◽  
Diptendu Bhattacharya

Abstract The progressions in the field of wireless technology can be highly attributed to the development of antennas, which can access high data rates, provide significant gain and uniform radiation characteristics. One such antenna called the Vivaldi antenna has attracted the utmost attention of the researchers owing to its high gain, wide bandwidth, low cross-polarization, and stable radiation characteristics. Over the years, different procedures have been proposed by several researchers to improve the performance of the Vivaldi antennas. Some of these different approaches are feeding mechanisms, integration of slots, dielectric substrate selection, and radiator shape. Correspondingly, the performance of a Vivaldi antenna can be increased by including dielectric lens, parasitic patch in between two radiators, corrugations, as well as metamaterials. This paper gives a systematic identification, location, and analysis of a large number of performance enhancement methods of Vivaldi antenna design depicting their concepts, advantages, drawbacks, and applications. The principal emphasis of this article is to offer an outline of the developments in the design of Vivaldi antennas over the last few years, where the most important offerings, mostly from IEEE publications, have been emphasized. This review work aims to reveal a promising path to antenna researchers for its advancement using Vivaldi antennas.


2018 ◽  
Vol 125 (1) ◽  
Author(s):  
Run-Chun Deng ◽  
Xiao-ming Yang ◽  
Bo Ma ◽  
Tian-qian Li ◽  
Hong-yuan Chen ◽  
...  

2013 ◽  
Vol 685 ◽  
pp. 340-344
Author(s):  
Rechem Djamil ◽  
Benkara Salima ◽  
Lamamra Kheireddine

The potential impact of high permittivity gate dielectrics on the performance of a ballistic nanoscale CNTFET is studied over a wide range of dielectric permittivities with low temperatures ranging from room temperature down to 100 K. Using the non-equilibrium Greens function (NEGF) formalism. Device characteristics such as ION/IOFF current ratio, threshold voltage, the drain induced barrier lowering (DIBL). The effects of temperature varying are also examined.


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