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Reseach Article

Mg Sm Ferrite for Nano structured E-Shaped Patch Antenna studies

by Vasant Naidu, M. Ashok Kumar, S.K.A. Ahamed, Chandra Prakash
International Journal of Computer Applications
Foundation of Computer Science (FCS), NY, USA
Volume 30 - Number 5
Year of Publication: 2011
Authors: Vasant Naidu, M. Ashok Kumar, S.K.A. Ahamed, Chandra Prakash
10.5120/3634-5074

Vasant Naidu, M. Ashok Kumar, S.K.A. Ahamed, Chandra Prakash . Mg Sm Ferrite for Nano structured E-Shaped Patch Antenna studies. International Journal of Computer Applications. 30, 5 ( September 2011), 45-50. DOI=10.5120/3634-5074

@article{ 10.5120/3634-5074,
author = { Vasant Naidu, M. Ashok Kumar, S.K.A. Ahamed, Chandra Prakash },
title = { Mg Sm Ferrite for Nano structured E-Shaped Patch Antenna studies },
journal = { International Journal of Computer Applications },
issue_date = { September 2011 },
volume = { 30 },
number = { 5 },
month = { September },
year = { 2011 },
issn = { 0975-8887 },
pages = { 45-50 },
numpages = {9},
url = { https://ijcaonline.org/archives/volume30/number5/3634-5074/ },
doi = { 10.5120/3634-5074 },
publisher = {Foundation of Computer Science (FCS), NY, USA},
address = {New York, USA}
}
%0 Journal Article
%1 2024-02-06T20:16:13.374426+05:30
%A Vasant Naidu
%A M. Ashok Kumar
%A S.K.A. Ahamed
%A Chandra Prakash
%T Mg Sm Ferrite for Nano structured E-Shaped Patch Antenna studies
%J International Journal of Computer Applications
%@ 0975-8887
%V 30
%N 5
%P 45-50
%D 2011
%I Foundation of Computer Science (FCS), NY, USA
Abstract

In this paper we have introduced Mg Smx Fe2-x O4 coated on RT DUROID5880 as substrate for an effective constituent to have a patch antenna. Here Mg Smx Fe2-x O4 of different thickness was coated over RT DUROID 5880 with dielectric constant of 2.2 and loss tangent of 0.0004. This combination forms a new substrate for E shaped micro strip patch antenna design. It was found that the dielectric constant was reduced to 1.12 and loss tangent to 0.00046. The thickness value of the combination was kept 15 mile, 13 mile, 12 mile, 11 mile and 10 mile. The simulation was performed using IE3D simulator for a frequency range of 5 GHz to 15 GHz. The Return loss was 21.5322 dB, VSWR value was 1.18306, the Directivity came to be 8.37864 dBi, the Gain was 11.6778dBi. The Efficiency came to be 98%, these simulated results were encouraging.

References
  1. M A Jacob.John, Khadar, Lonappan.Anil and K.T Mathew, Microwave dielectric properties of nano structured nickel ferrite, Bull, Mater. Sci,31- 6.(2008) pp. 847-851.
  2. Vasant Naidu, S.K.A. Ahamed KanduSahib, M.SheikDawood, M.Suganthi; Magnetic Properties of Nano Crystalline Nickel, Samariumdoped Zinc Ferrite , International Journal of Computer Applications,24–2, (June 2011),pp. 0975 – 8887.
  3. Vasant Naidu, S.K.A.Ahamed KanduSahib, M.SheikDawood, M.Suganthi; Magnetic Properties of Nano Crystalline Nickel, Cerium doped Zinc Ferrite , International Journal of Nano tech and Nano Sci in press.
  4. A.T Raghavendera., Damir Pajic, kreso Zadro,Tomislav Milekovic, Venkateshwar Rao.P. Jadhav K M and Ravinder D,Synthesis and Magnetic properties of NiFe2-xAlxO4 nano particles, Mag J and Mag Mat, 1 (2007). pp 316.
  5. Burke P.J, S.Li and Z. Yu, Quantitative theory of nanowire and nanotube antenna performance Nanotechnology, IEEE transactions on, 2006, 5(4); p 314-334.
  6. Demoustier, S., et al., Review of two microwave applications of carbon nanotubes: nano-antennas and nano-switches. Comptes Rendus Physique, 2008. 9(1): p. 53-66.
  7. Ahmed H. Reja “Study of Micro Strip Feed Line Patch Antenna”, Antennas and Propagation International Symposium, vol. 27, pp. 340-342 December 2008.
  8. Sahntanu Kumar Behera and Y. Choukiker, ”Design and Optimization of Dual Band Micro Strip Antenna Using Practicle Swarm Optimization Technique,” in Springer Science+Business Media, LLC, pp. 1346-1354, 2010.
  9. A. A. Deshmukh and G. Kumar, “Compact broadband gap-coupled shorted L-shaped microstrip antennas,” in IEEE Antennas and Propagation International Symposium, vol 1, (Baltimore, Maryland), pp. 106–109, IEEE, July 2001.
  10. Z. M.Chen and Y.W.M. Chial, “Broadband probe-fed L-shaped plate antenna,” Microwave and Optical Technology Letters, vol. 26, pp. 204–206, 1985.
  11. K. F. Lee, K. M. Luk, K. F. Tong, Y. L. Yung, and T. Huynh, “Experimental study of the rectangular patch with a U-shaped slot,” in IEEE Antennas and Propagation International Symposium, vol. 1, (Baltimore, Maryland), pp. 10–13, IEEE, July 1996.
  12. S. C. Gao, L. W. Li, M. S. Leong, and T. S. Yeo, “Design and analysis of a novel wideband microstrip antenna,” in IEEE Antennas and Propagation International Symposium,vol. 1, (Boston, Massachusetts), pp. 90–93, IEEE, July 2001.
  13. M. Khodier and C. Christodoulou, “A technique to further increase the bandwidth Of stacked microstrip antennas,” in IEEE Antennas and Propagation International Symposium, vol. 3, (Salt Lake City, Utah), pp. 1394–1397, IEEE, July 2000.
  14. Neenansha Jain, Anubhuti Khare, Rajesh Nema ,“ E-Shape Micro strip Patch Antenna on Different Thickness for pervasive Wireless Communication” (IJACSA) International Journal of Advanced Computer Science and Applications, Vol. 2, No. 4, 2011
  15. C.A.Balanis “Antenna Theory Analysis and Design” 1938.
Index Terms

Computer Science
Information Sciences

Keywords

IE3D SIMULATOR RT Duroid Micro strip E patch antenna Nano ferrite materials Loss tangent Relative permittivity