Skip to main content
Top

2014 | OriginalPaper | Chapter

8. Comparison Method to Predict the Directivity of Terahertz Patch Antenna

Authors : Kumud Ranjan Jha, Ghanshyam Singh

Published in: Terahertz Planar Antennas for Next Generation Communication

Publisher: Springer International Publishing

Activate our intelligent search to find suitable subject content or patents.

search-config
loading …

Abstract

Highly reflective surfaces as superstrate are widely used to enhance the directivity of an elementary dipole and microstrip antennas in the microwave and millimeter wave frequency regime of the electromagnetic spectrum. It is also demonstrated that such type of structures are also suitable for the terahertz application where the directivity is the primary concern.

Dont have a licence yet? Then find out more about our products and how to get one now:

Springer Professional "Wirtschaft+Technik"

Online-Abonnement

Mit Springer Professional "Wirtschaft+Technik" erhalten Sie Zugriff auf:

  • über 102.000 Bücher
  • über 537 Zeitschriften

aus folgenden Fachgebieten:

  • Automobil + Motoren
  • Bauwesen + Immobilien
  • Business IT + Informatik
  • Elektrotechnik + Elektronik
  • Energie + Nachhaltigkeit
  • Finance + Banking
  • Management + Führung
  • Marketing + Vertrieb
  • Maschinenbau + Werkstoffe
  • Versicherung + Risiko

Jetzt Wissensvorsprung sichern!

Springer Professional "Technik"

Online-Abonnement

Mit Springer Professional "Technik" erhalten Sie Zugriff auf:

  • über 67.000 Bücher
  • über 390 Zeitschriften

aus folgenden Fachgebieten:

  • Automobil + Motoren
  • Bauwesen + Immobilien
  • Business IT + Informatik
  • Elektrotechnik + Elektronik
  • Energie + Nachhaltigkeit
  • Maschinenbau + Werkstoffe




 

Jetzt Wissensvorsprung sichern!

Literature
1.
go back to reference Liu, Z.-G., Ge, Z.-C., Chen, X.-Y.: Research progress on Fabry-Perot resonator antenna. Int. J. Zhejiang Univ. Sci. A 10(4), 583–588 (2009) Liu, Z.-G., Ge, Z.-C., Chen, X.-Y.: Research progress on Fabry-Perot resonator antenna. Int. J. Zhejiang Univ. Sci. A 10(4), 583–588 (2009)
2.
go back to reference Gardelli, R., Albani, M., Capolino, F.: Array thinning by using antennas in a Fabry-Perot cavity for gain enhancement. IEEE Trans. Antennas Propag. 54(7), 1979–1990 (2006) Gardelli, R., Albani, M., Capolino, F.: Array thinning by using antennas in a Fabry-Perot cavity for gain enhancement. IEEE Trans. Antennas Propag. 54(7), 1979–1990 (2006)
3.
go back to reference Boutayeb, H., Tarot, A. C.: Internally excited Fabry-Perot type cavity: power normalization and directivity evaluation. IEEE Antenna Wirel. Propag. Lett. 5(1), 159–162 (2006) Boutayeb, H., Tarot, A. C.: Internally excited Fabry-Perot type cavity: power normalization and directivity evaluation. IEEE Antenna Wirel. Propag. Lett. 5(1), 159–162 (2006)
4.
go back to reference Guerin, N., Enoch, S., Tayeb, G., Sabouroux, P., Vincent, P., Legay, H.: A metallic Fabry-Perot directivity antenna. IEEE Trans. Antennas Propag. 54(1), 220–224 (2006) Guerin, N., Enoch, S., Tayeb, G., Sabouroux, P., Vincent, P., Legay, H.: A metallic Fabry-Perot directivity antenna. IEEE Trans. Antennas Propag. 54(1), 220–224 (2006)
5.
go back to reference Boutayeb, H., Denidni, T. A., Mahdjoubi, K., Tarot, A. C., Sebak, A. R., Talbi, L.: Analysis and design of a cylindrical EBG based directive antenna. IEEE Trans. Antennas Propag. 54(1), 211–219 (2006) Boutayeb, H., Denidni, T. A., Mahdjoubi, K., Tarot, A. C., Sebak, A. R., Talbi, L.: Analysis and design of a cylindrical EBG based directive antenna. IEEE Trans. Antennas Propag. 54(1), 211–219 (2006)
6.
go back to reference Ge, Z. C., Zhang, W. X., Liu, Z. G., Gu, Y. Y.: Broadband and high-gain printed antennas constructed from Fabry-Perot resonator structure using EBG or FSS cover. Microw. Opt. Tech. Lett. 48(7), 1272–1274 (2006) Ge, Z. C., Zhang, W. X., Liu, Z. G., Gu, Y. Y.: Broadband and high-gain printed antennas constructed from Fabry-Perot resonator structure using EBG or FSS cover. Microw. Opt. Tech. Lett. 48(7), 1272–1274 (2006)
7.
go back to reference Weily, R., Bird, T. S., Guo, Y. J.: A reconfigurable high-gain partially reflecting surface antenna. IEEE Trans. Antennas Propag. 56 (11), 3382–3390 (2008) Weily, R., Bird, T. S., Guo, Y. J.: A reconfigurable high-gain partially reflecting surface antenna. IEEE Trans. Antennas Propag. 56 (11), 3382–3390 (2008)
8.
go back to reference Campos, A. L. P. d.: Analysis of frequency selective surfaces with metallic and dielectric losses at millimeter wave range. Int. J. Infrared Milli. Waves and Terahertz 29(7), 684–692 (2008) Campos, A. L. P. d.: Analysis of frequency selective surfaces with metallic and dielectric losses at millimeter wave range. Int. J. Infrared Milli. Waves and Terahertz 29(7), 684–692 (2008)
9.
go back to reference Ge, Y., Esselle, K. P., Bird, T. S.: Designing a partially reflective surface with increasing reflection phase for wide-band EBG resonator antennas. In: Proc. Int. Symp. Antennas Propag. Soc. 2009, USA, June 1-5, 2009, pp. 1–4 (2009) Ge, Y., Esselle, K. P., Bird, T. S.: Designing a partially reflective surface with increasing reflection phase for wide-band EBG resonator antennas. In: Proc. Int. Symp. Antennas Propag. Soc. 2009, USA, June 1-5, 2009, pp. 1–4 (2009)
10.
go back to reference Foroozesh, A., Shafai, L.: Investigation into the effects of patch-type FSS superstrate on the high-gain cavity resonance antenna design. IEEE Trans. Antennas Propag. 58(2), 258–270 (2010) Foroozesh, A., Shafai, L.: Investigation into the effects of patch-type FSS superstrate on the high-gain cavity resonance antenna design. IEEE Trans. Antennas Propag. 58(2), 258–270 (2010)
11.
go back to reference Zhao, T., Jackson, D. R., Williams, J. T., Oliner, A. A.: General formulas for 2-D leaky-wave antennas. IEEE Trans. Antennas Propag. 53(11), 3525–3533 (2005) Zhao, T., Jackson, D. R., Williams, J. T., Oliner, A. A.: General formulas for 2-D leaky-wave antennas. IEEE Trans. Antennas Propag. 53(11), 3525–3533 (2005)
12.
go back to reference A Foroozesh, A., Shafai, L.: 2-D truncated periodic leaky-wave antennas with reactive impedance surface ground. In: Proc. IEEE Int. Symp., Albuquerque, USA, Jul. 9–14, 2006, pp. 15–18 (2006) A Foroozesh, A., Shafai, L.: 2-D truncated periodic leaky-wave antennas with reactive impedance surface ground. In: Proc. IEEE Int. Symp., Albuquerque, USA, Jul. 9–14, 2006, pp. 15–18 (2006)
13.
go back to reference Raisanen, A. V.: Challenges of terahertz. In: Proc. 2nd European Conf. Antennas Propag., Edinburgh, UK, Nov. 11–16, 2007, pp. 1–4 (2007) Raisanen, A. V.: Challenges of terahertz. In: Proc. 2nd European Conf. Antennas Propag., Edinburgh, UK, Nov. 11–16, 2007, pp. 1–4 (2007)
14.
go back to reference Trentini, G. V.: Partially reflecting sheet arrays. IRE Trans. Antennas Propag. 4(4), 666–671 (1956) Trentini, G. V.: Partially reflecting sheet arrays. IRE Trans. Antennas Propag. 4(4), 666–671 (1956)
15.
go back to reference Feresidis, A. P., Vardaxoglou, J. C.: High gain planar antenna using optimised partially reflective surfaces. In: Proc. IEE Microw. Antennas. Propag. 148(6), 345–350 (2001) Feresidis, A. P., Vardaxoglou, J. C.: High gain planar antenna using optimised partially reflective surfaces. In: Proc. IEE Microw. Antennas. Propag. 148(6), 345–350 (2001)
16.
go back to reference Jha, K.R., Singh. G.: Prediction of highly directive probe-fed microstrip antenna at terahertz frequency. Int. J. Numer. Model. Electron. Netw. Devices Fields 25(2), 175–191 (2012) Jha, K.R., Singh. G.: Prediction of highly directive probe-fed microstrip antenna at terahertz frequency. Int. J. Numer. Model. Electron. Netw. Devices Fields 25(2), 175–191 (2012)
17.
go back to reference Karver, K. R., Mink, J. W.: Microstrip antenna technology. IEEE Trans. Antennas Propag. 29(1), 2–24 (1981) Karver, K. R., Mink, J. W.: Microstrip antenna technology. IEEE Trans. Antennas Propag. 29(1), 2–24 (1981)
18.
go back to reference Chattopadhyay, S., Biswas, M., Siddiqui, J. Y., Guha, D.: Input impedance of probe-fed rectangular microstrip antennas with variable air gap and varying aspect ratio, IET Microw. Antennas Propag. 3(8), 1151–1156 (2009) Chattopadhyay, S., Biswas, M., Siddiqui, J. Y., Guha, D.: Input impedance of probe-fed rectangular microstrip antennas with variable air gap and varying aspect ratio, IET Microw. Antennas Propag. 3(8), 1151–1156 (2009)
19.
go back to reference Balanis, C. A.: Antenna Theory Analysis and Design, John Wiley and Sons, New York (2001) Balanis, C. A.: Antenna Theory Analysis and Design, John Wiley and Sons, New York (2001)
20.
go back to reference Derneryd, A. G.: A theoretical investigation of the rectangular microstrip antenna element. IEEE Trans. Antennas Propag. 26(4), 532–535 (1978) Derneryd, A. G.: A theoretical investigation of the rectangular microstrip antenna element. IEEE Trans. Antennas Propag. 26(4), 532–535 (1978)
21.
go back to reference Jha, K. R., Singh, G.: Analysis of the narrow terahertz microstrip transmission-line. J. Comp. Elect. 10(1–2), 186–194 (2011) Jha, K. R., Singh, G.: Analysis of the narrow terahertz microstrip transmission-line. J. Comp. Elect. 10(1–2), 186–194 (2011)
22.
go back to reference Gallerano, G. P., Biedron, S.: Overview of terahertz radiation sources. In: Proc. Free Electron Lasser Conf., Trieste, Italy, Aug. 29-Sep. 03, 2004, pp. 216–221 (2004) Gallerano, G. P., Biedron, S.: Overview of terahertz radiation sources. In: Proc. Free Electron Lasser Conf., Trieste, Italy, Aug. 29-Sep. 03, 2004, pp. 216–221 (2004)
23.
go back to reference Hong, J.–S., Lancaster, M. J.: Microstrip Filters for RF/Microwave Applications. John Wiley and Sons, New York (2001) Hong, J.–S., Lancaster, M. J.: Microstrip Filters for RF/Microwave Applications. John Wiley and Sons, New York (2001)
24.
go back to reference Balanis, C. A.: Advanced Engineering Electromagnetics. John Wiley and Sons, New York (1989) Balanis, C. A.: Advanced Engineering Electromagnetics. John Wiley and Sons, New York (1989)
25.
go back to reference Ju, J., Kim, D., Choi, J.: Fabry-Perot cavity antenna with lateral metallic walls for WiBro base station applications. Elect. Lett. 45(3), 141–142 (2009) Ju, J., Kim, D., Choi, J.: Fabry-Perot cavity antenna with lateral metallic walls for WiBro base station applications. Elect. Lett. 45(3), 141–142 (2009)
26.
go back to reference Jha K. R., Singh, G.: Terahertz dipole antenna in Fabry-Perot cavity with two side-walls to enhance the directivity. In: Proc. Infrared Milli. and Terahertz Waves, Rome, Italy, Sep. 05–08, 2010, pp. 1–2 (2010) Jha K. R., Singh, G.: Terahertz dipole antenna in Fabry-Perot cavity with two side-walls to enhance the directivity. In: Proc. Infrared Milli. and Terahertz Waves, Rome, Italy, Sep. 05–08, 2010, pp. 1–2 (2010)
27.
go back to reference Piesiewicz, R., Islam, M. N., Koch, M., Kurner, T.: Towards short-range terahertz communication systems: basic considerations. In: Proc. 18th Int. Conf. Appl. Electromagnetics Commn., Dubrovnik, Croatia, Oct. 12–14, 2005, pp. 1–5 (2005) Piesiewicz, R., Islam, M. N., Koch, M., Kurner, T.: Towards short-range terahertz communication systems: basic considerations. In: Proc. 18th Int. Conf. Appl. Electromagnetics Commn., Dubrovnik, Croatia, Oct. 12–14, 2005, pp. 1–5 (2005)
28.
go back to reference Jha, K. R., Singh, G.: Analysis and design of enhanced directivity microstrip antenna at terahertz frequency by using electromagnetic bandgap material. Int. J. Numer. Model. Electron. Netw. Devices Fields 24(5), 410–424 (2011) Jha, K. R., Singh, G.: Analysis and design of enhanced directivity microstrip antenna at terahertz frequency by using electromagnetic bandgap material. Int. J. Numer. Model. Electron. Netw. Devices Fields 24(5), 410–424 (2011)
29.
go back to reference Han K., Nguyen, T. K., Park, I., Han, H.: Terahertz Yagi-Uda antenna for high input resistance. J. Infrared Milli. Tera.Waves 31(5), 441–454 (2010) Han K., Nguyen, T. K., Park, I., Han, H.: Terahertz Yagi-Uda antenna for high input resistance. J. Infrared Milli. Tera.Waves 31(5), 441–454 (2010)
30.
go back to reference Sharma, A., Singh, G.: Rectangular microstrip patch antenna design at THz frequency for short-distance wireless communication. J. Infrared Millim. Terahertz Waves 30(1), 1–7 (2009) Sharma, A., Singh, G.: Rectangular microstrip patch antenna design at THz frequency for short-distance wireless communication. J. Infrared Millim. Terahertz Waves 30(1), 1–7 (2009)
31.
go back to reference Lubecke, V., Mizuno, K., Rebeiz, G.: Micromachining for terahertz applications. IEEE Trans. Microw. Theo. Tech. 46(11), 1821–1831 (1998) Lubecke, V., Mizuno, K., Rebeiz, G.: Micromachining for terahertz applications. IEEE Trans. Microw. Theo. Tech. 46(11), 1821–1831 (1998)
32.
go back to reference Kadoya, Y., Onuma, M., Yanagi, S., Ohkubo, T., Sato, N., Kitagawa, J.: THz wave propagation on strip-lines: devices, properties, and applications. Radioengineering 17(2), 48–55 (2008) Kadoya, Y., Onuma, M., Yanagi, S., Ohkubo, T., Sato, N., Kitagawa, J.: THz wave propagation on strip-lines: devices, properties, and applications. Radioengineering 17(2), 48–55 (2008)
Metadata
Title
Comparison Method to Predict the Directivity of Terahertz Patch Antenna
Authors
Kumud Ranjan Jha
Ghanshyam Singh
Copyright Year
2014
DOI
https://doi.org/10.1007/978-3-319-02341-0_8