Performance Enhancement of Microstrip Patch Antenna using Meta surface

Year : 2024 | Volume :11 | Issue : 03 | Page : –
By
vector

Apurva Jaiswal,

vector

Anil Pandey,

vector

Shilpee Patil,

vector

Abhay Jha,

vector

Anshuman Singh,

  1. Student, Galgotias College of Engineering and Technology Greater Noida, Uttar Pradesh, India
  2. Assistant Professor, Galgotias College of Engineering and Technology Greater Noida, Uttar Pradesh, India
  3. Professor, Galgotias College of Engineering and Technology Greater Noida, Uttar Pradesh, India
  4. Student, Galgotias College of Engineering and Technology Greater Noida, Uttar Pradesh, India
  5. Student, Galgotias College of Engineering and Technology Greater Noida, Uttar Pradesh, India

Abstract document.addEventListener(‘DOMContentLoaded’,function(){frmFrontForm.scrollToID(‘frm_container_abs_106772’);});Edit Abstract & Keyword

Performance enhancement of microstrip patch antenna using Meta surface provides a thorough analysis of how a Meta surface integration technique might improve the performance of a microstrip patch antenna. The 4×4 array of square components meta surface measuring 51.6 × 51.6 × 3.1016 mm is merged with the microstrip patch antenna, which has dimensions A=13.5 mm, B=12 mm, and C=1.2 mm. The radiation box dimensions (100 mm × 100 mm × 55 mm) and substrate materials (Taconic 26 D Material and foam) are among the characteristics that are taken into account. The results show that the suggested integration is a useful way to improve the performance of microstrip patch antennas, since they show notable increases in bandwidth and gain throughout a variety of frequency ranges. Microstrip patch antennas (MPA) are a common component of many different communication systems because of their conformability, low profile, and ease of production. Nevertheless, they are frequently constrained by high surface wave losses, low gain, and narrow bandwidth. Using metasurfaces, which are artificially constructed structures with special electromagnetic properties, has shown to be a successful way to get around these restrictions. The present research delves into the function of metasurfaces in augmenting the efficiency of MPAs, with particular attention to gain, bandwidth, and radiation efficiency.

Keywords: Microstrip patch antenna, Meta surface integration, Bandwidth enhancement, Substrate materials

[This article belongs to Journal of Microwave Engineering and Technologies (jomet)]

How to cite this article:
Apurva Jaiswal, Anil Pandey, Shilpee Patil, Abhay Jha, Anshuman Singh. Performance Enhancement of Microstrip Patch Antenna using Meta surface. Journal of Microwave Engineering and Technologies. 2024; 11(03):-.
How to cite this URL:
Apurva Jaiswal, Anil Pandey, Shilpee Patil, Abhay Jha, Anshuman Singh. Performance Enhancement of Microstrip Patch Antenna using Meta surface. Journal of Microwave Engineering and Technologies. 2024; 11(03):-. Available from: https://journals.stmjournals.com/jomet/article=2024/view=0

Full Text PDF

References
document.addEventListener(‘DOMContentLoaded’,function(){frmFrontForm.scrollToID(‘frm_container_ref_106772’);});Edit

  1. Samantaray and S. Bhattacharyya, “A Gain-Enhanced Slotted Patch Antenna Using Metasurface as Superstrate Configuration,” in IEEE Transactions on Antennas and Propagation, vol. 68, no. 9, pp. 6548-6556, Sept. 2020, doi: 10.1109/TAP.2020.2990280.
  2. X. Ta and I. Park, “Compact Wideband Circularly Polarized Patch Antenna Array Using Metasurface,” in IEEE Antennas and Wireless Propagation Letters, vol. 16, pp. 1932-1936, 2017, doi: 10.1109/LAWP.2017.2689161.
  3. E. Kedze, H. Wang and I. Park, “A Metasurface-Based Wide-Bandwidth and High-Gain Circularly Polarized Patch Antenna,” in IEEE Transactions on Antennas and Propagation, vol. 70, no. 1, pp. 732-737, Jan. 2022, doi: 10.1109/TAP.2021.3098574.
  4. Hussain, U. Azimov, J. -W. Park, S. -Y. Rhee and N. Kim, “A Microstrip Patch Antenna Sandwiched Between a Ground Plane and a Metasurface for WiMAX Applications,” 2018 Asia-Pacific Microwave Conference (APMC), Kyoto, Japan, 2018, pp. 1016-1018, doi: 10.23919/APMC.2018.8617342.
  5. Liang, Z., Ouyang, J., & Yang, F. (2018). Design and characteristic mode analysis of a low-profile wideband patch antenna using metasurface. Journal of Electromagnetic Waves and Applications, 32(17), 2304–2313. https://doi.org/10.1080/09205071.2018.1507843
  6. Ansuman Subham, Diptiranjan Samantaray, Sambit Kumar Ghosh, ‘‘Performance improvement of a patch anteena using metasurface of THz application’’. Optik. 264, August 2022, 169412.
  7. Painam and C. Bhuma, “Miniaturizing a Microstrip Antenna Using Metamaterials and Metasurfaces [Antenna Applications Corner],” in IEEE Antennas and Propagation Magazine, vol. 61, no. 1, pp. 91-135, Feb. 2019, doi: 10.1109/MAP.2018.2883018.
  8. Diptiranjan Samantaray, Somak Bhattacharya, ‘‘A metasurface based gain enhanced dual band patch anteena using SRRs with defected ground structure’. Radio Science. Feb.2021; 56(2): 57-96.
  9. Diptiranjan Samantaray, Somak Bhattacharya, Kothapalli,“ A modified fractal-shaped patch anteena with defected ground using metasurface for dual band application’’. International Journal RF and Microwave Computer- Aided Engineering. Aug 2019; vol.23, pp.13-1820 ,. . https://onlinelibrary.wiley.com/doi/abs/10.1002/mmce.21932
  10. Liu, N. Li, Y. Jia, W. Zhang and Z. Zhou, “Low RCS and High-Gain Patch Antenna Based on a Holographic Metasurface,” in IEEE Antennas and Wireless Propagation Letters, vol. 18, no. 3, pp. 492-496, March 2019, doi: 10.1109/LAWP.2019.2895117.
  11. Felipe Ferreira de Araújo, Antonio Luiz Pereira de Siqueira Campos, Ruann Victor de Andrade Lira, Alfredo Gomes Neto, Adaildo Gomes d’Assunção. Bandwidth Enhancement of Microstrip Patch Antenna Using Metasurface Microw. Optoelectron. Electromagn. Appl. 20 (1). Mar 2021  https://doi.org/10.1590/2179-10742021v20i1959
  12. M. Pan, P. F. Hu, X. Y. Zhang and S. Y. Zheng, “A Low-Profile High-Gain and Wideband Filtering Antenna With Metasurface,” in IEEE Transactions on Antennas and Propagation, vol. 64, no. 5, pp. 2010-2016, May 2016, doi: 10.1109/TAP.2016.2535498
  13. Jianxing Li, Tayyab Ali Khan, Xianjia Meng, ‘‘Wideband radar cross-section reduction of microstrip patch anteena using coding metasurface”. IET Microwaves, Antennas and Propagation, Vol !2, pp.2046-2051, 14Jun 2019.
  14. Wan, M. Xue, L. Cao, T. Ye and Q. Wang, “Low-Profile Broadband Patch-Driven Metasurface Antenna,” in IEEE Antennas and Wireless Propagation Letters, vol. 19, no. 7, pp. 1251-1255, July 2020, doi: 10.1109/LAWP.2020.2997346.
  15. Jnana N J, Dr Sheeba O. Performance Analysis of Patch Antenna Using Slot Shaped Metasurface. International Journal of Advanced Trends in Computer Science and Engineering (IJATCSE), Vol. 4, No.4 Pages : 34 – 38 (2015). Special Issue of ICEEC 2015 – Held on August 24, 2015, in The Dunes, Cochin, India.
  16. Huang, W. Pan, X. Ma and X. Luo, “Wideband Radar Cross-Section Reduction of a Stacked Patch Array Antenna Using Metasurface,” in IEEE Antennas and Wireless Propagation Letters, vol. 14, pp. 1369-1372, 2015, doi: 10.1109/LAWP.2015.2407375.
  17. Chen, M. Guo, D. Sang, Z. Sun and Y. Fu, “RCS Reduction of Patch Array Antenna Using Anisotropic Resistive Metasurface,” in IEEE Antennas and Wireless Propagation Letters, vol. 18, no. 6, pp. 1223-1227, June 2019, doi: 10.1109/LAWP.2019.2913104
  18. Gohar Varamini, Asghar Keshtkar, Mohammad Naser-Moghadasi. ‘‘Miniaturization of microstrip loop anteena for a wireless applications based on metamaterial metasurface’’. International Journal of Electronics and Communication Communication, Jan. 2018; 83: 32-39.
  19. Chaimool, C. Rakluea and P. Akkaraekthalin, “Low-profile unidirectional microstrip-fed slot antenna using metasurface,” 2011 International Symposium on Intelligent Signal Processing and Communications Systems (ISPACS), Chiang Mai, Thailand, 2011, pp. 1-5, doi: 10.1109/ISPACS.2011.6146078.
  20. Enyu Zhou, Yongzhi Cheng, Fu Chen, Hui Luo,‘‘Wideband and high-gain patch anteena with reflective focusing metasurface’’. AEU – International Journal of Electronics and Communications. Volume 134, May 2021, 153709

Regular Issue Subscription Review Article
Volume 11
Issue 03
Received 16/07/2024
Accepted 16/09/2024
Published 09/10/2024

function myFunction2() {
var x = document.getElementById(“browsefigure”);
if (x.style.display === “block”) {
x.style.display = “none”;
}
else { x.style.display = “Block”; }
}
document.querySelector(“.prevBtn”).addEventListener(“click”, () => {
changeSlides(-1);
});
document.querySelector(“.nextBtn”).addEventListener(“click”, () => {
changeSlides(1);
});
var slideIndex = 1;
showSlides(slideIndex);
function changeSlides(n) {
showSlides((slideIndex += n));
}
function currentSlide(n) {
showSlides((slideIndex = n));
}
function showSlides(n) {
var i;
var slides = document.getElementsByClassName(“Slide”);
var dots = document.getElementsByClassName(“Navdot”);
if (n > slides.length) { slideIndex = 1; }
if (n (item.style.display = “none”));
Array.from(dots).forEach(
item => (item.className = item.className.replace(” selected”, “”))
);
slides[slideIndex – 1].style.display = “block”;
dots[slideIndex – 1].className += ” selected”;
}