Vol. 56
Latest Volume
All Volumes
PIERB 109 [2024] PIERB 108 [2024] PIERB 107 [2024] PIERB 106 [2024] PIERB 105 [2024] PIERB 104 [2024] PIERB 103 [2023] PIERB 102 [2023] PIERB 101 [2023] PIERB 100 [2023] PIERB 99 [2023] PIERB 98 [2023] PIERB 97 [2022] PIERB 96 [2022] PIERB 95 [2022] PIERB 94 [2021] PIERB 93 [2021] PIERB 92 [2021] PIERB 91 [2021] PIERB 90 [2021] PIERB 89 [2020] PIERB 88 [2020] PIERB 87 [2020] PIERB 86 [2020] PIERB 85 [2019] PIERB 84 [2019] PIERB 83 [2019] PIERB 82 [2018] PIERB 81 [2018] PIERB 80 [2018] PIERB 79 [2017] PIERB 78 [2017] PIERB 77 [2017] PIERB 76 [2017] PIERB 75 [2017] PIERB 74 [2017] PIERB 73 [2017] PIERB 72 [2017] PIERB 71 [2016] PIERB 70 [2016] PIERB 69 [2016] PIERB 68 [2016] PIERB 67 [2016] PIERB 66 [2016] PIERB 65 [2016] PIERB 64 [2015] PIERB 63 [2015] PIERB 62 [2015] PIERB 61 [2014] PIERB 60 [2014] PIERB 59 [2014] PIERB 58 [2014] PIERB 57 [2014] PIERB 56 [2013] PIERB 55 [2013] PIERB 54 [2013] PIERB 53 [2013] PIERB 52 [2013] PIERB 51 [2013] PIERB 50 [2013] PIERB 49 [2013] PIERB 48 [2013] PIERB 47 [2013] PIERB 46 [2013] PIERB 45 [2012] PIERB 44 [2012] PIERB 43 [2012] PIERB 42 [2012] PIERB 41 [2012] PIERB 40 [2012] PIERB 39 [2012] PIERB 38 [2012] PIERB 37 [2012] PIERB 36 [2012] PIERB 35 [2011] PIERB 34 [2011] PIERB 33 [2011] PIERB 32 [2011] PIERB 31 [2011] PIERB 30 [2011] PIERB 29 [2011] PIERB 28 [2011] PIERB 27 [2011] PIERB 26 [2010] PIERB 25 [2010] PIERB 24 [2010] PIERB 23 [2010] PIERB 22 [2010] PIERB 21 [2010] PIERB 20 [2010] PIERB 19 [2010] PIERB 18 [2009] PIERB 17 [2009] PIERB 16 [2009] PIERB 15 [2009] PIERB 14 [2009] PIERB 13 [2009] PIERB 12 [2009] PIERB 11 [2009] PIERB 10 [2008] PIERB 9 [2008] PIERB 8 [2008] PIERB 7 [2008] PIERB 6 [2008] PIERB 5 [2008] PIERB 4 [2008] PIERB 3 [2008] PIERB 2 [2008] PIERB 1 [2008]
2013-11-12
Design and Analysis of Tapered Slot Antenna with 3.5/5.5 GHz Band-Notched Characteristics
By
Progress In Electromagnetics Research B, Vol. 56, 347-363, 2013
Abstract
novel tapered slot antenna (TSA) with 3.5/5.5 GHz dual band-notched characteristics for ultra-wideband (UWB) radios is proposed in this paper. To realize dual band-notched characteristics at the TSA, we employ (a) a pair of nested C-shaped stubs beside the feed line and (b) a broadband microstrip-to-slot-line transition with an Archimedean spiral-shaped slot. The proposed antenna has been successfully simulated, implemented, and measured. An equivalent circuit model of the proposed antenna is also presented to discuss the mechanism of the dual band-notched TSA. The measured data for the optimized case show the bandwidth for the VSWR < 2 to be 9.2 GHz (from 2.4 to 11.6 GHz) with two notched bands of 3.1-4.0 GHz (WiMAX band) and 5.1-6.2 GHz (WLAN band), respectively. The measured electrical parameters of the proposed antenna and its radiation patterns show excellent performance with good pulse handling capabilities. Also, the 3.5/5.5 GHz dual band-notched characteristics are achieved without increasing the size of the single band-notched TSA reported previously.
Citation
Dae-Heon Lee, Hae-Yong Yang, and Young-Ki Cho, "Design and Analysis of Tapered Slot Antenna with 3.5/5.5 GHz Band-Notched Characteristics," Progress In Electromagnetics Research B, Vol. 56, 347-363, 2013.
doi:10.2528/PIERB13092702
References

1. Janaswamy, R. and D. H. Schaubert, "Analysis of the tapered slot antenna," IEEE Trans. on Antennas and Propag., Vol. 35, No. 9, 1058-1065, 1987.
doi:10.1109/TAP.1987.1144218

2. Ma, T. G. and S. K. Jeng, "Planar miniature tapered-slot-fed annular slot antennas for ultrawide-band radios," IEEE Trans. on Antennas and Propag., Vol. 53, No. 3, 1194-1202, 2005.
doi:10.1109/TAP.2004.842648

3. Abbosh, A. M., "Miniaturized microstrip-fed tapered-slot antenna with ultrawideband performance," IEEE Antennas Wireless Propag. Lett., Vol. 8, 690-692, 2009.
doi:10.1109/LAWP.2009.2025613

4. Jolani, F., G. R. Dadashzadeh, M. Naser-Moghadasi, and A. M. Dadgarpour, "Design and optimization of compact balanced antipodal vivaldi antenna ," Progress In Electromagnetics Research C, Vol. 9, 183-192, 2009.
doi:10.2528/PIERC09071510

5. Yao, Y., M. Liu, W. Chen, and Z. Feng, "Analysis and design of wideband widescan planar tapered slot antenna array," IET Microw. Antennas Propag., Vol. 4, No. 10, 1632-1638, 2010.
doi:10.1049/iet-map.2009.0226

6. Hamid, M. R., P. S. Hall, P. Gardner, and F. Ghanem, "Switched WLAN-wideband tapered slot antenna," Electron. Lett., Vol. 46, No. 1, 23-24, 2010.
doi:10.1049/el.2010.2268

7. Schantz, H. G. and Frequency, "Frequency notched UWB antennas," Proc. IEEE Ultra Wideband Sys. Tech. Conf., 214-218, Nov. 2003.

8. Kalteh, A. A., G. R. DadashZadeh, M. Naser-Moghadasi, and B. S. Virdee, "Ultra-wideband circular slot antenna with reconfigurable notch band function," IET Microw. Antennas Propag., Vol. 6, No. 1, 108-112, 2012..
doi:10.1049/iet-map.2011.0125

9. Kim, C. B., J. S. Lim, J. S. Jang, Y. H. Jung, H. S. Lee, and M. S. Lee, "Design of the wideband notched compact UWB antenna," APMC 2007 (2007 Asia-Pacific Microwave Conference), 1-4, Dec. 2007.
doi:10.1109/APMC.2007.4554589

10. Mehranpour, M., J. Nourinia, C. Ghobadi, and M. Ojaroudi, "Dual band notched square monopole antenna for ultrawideband applications ," IEEE Antennas Wireless Propag. Lett., Vol. 11, 172-175, 2012.
doi:10.1109/LAWP.2012.2186552

11. Lee, J.-H. and Y.-J. Sung, "Band-notched ultra-wideband antenna with asymmetric coupled-line for WLAN and X-band military satellite ," Journal of Electromagnetic Engineering and Science, Vol. 13, No. 1, 34-37, Mar. 2013.
doi:10.5515/JKIEES.2013.13.1.34

12. Peng, L. and C. L. Ruan, "UWB band-notched monopole antenna design using electromagnetic-bandgap structures," IEEE Tran. on Microwave Theory and Tech., Vol. 59, No. 4, 1074-1081, 2011.
doi:10.1109/TMTT.2011.2114090

13. Peng, L. and C.-L. Ruan, "Design and time-domain analysis of compact multi-band-notched uwb antennas with EBG structures," Progress In Electromagnetics Research B, Vol. 47, 339-357, 2013.

14. Zhang, Y., W. Hong, C. Yu, Z. Q. Kuai, Y. D. Don, and J. Y. Zhou, "Planar ultrawideband antennas with multiple notched bands based on etched slots on the patch and/or split ring resonators on the feed line," IEEE Trans. on Antennas and Propag., Vol. 56, No. 9, 3063-3068, 2008.
doi:10.1109/TAP.2008.928815

15. Kim, D. O., N. I. Jo, D. M. Choi, and C. Y. Kim, "Design of the novel band notched UWB antenna with the spiral loop resonators," PIERS Online, Vol. 6, No. 2, 173-176, 2006.
doi:10.2529/PIERS090905000520

16. Bao, X. L. and M. J. Ammann, "Printed UWB antenna with coupled slotted element for notch-frequency function," International Journal of Antennas and Propagation, 1-7, 2008.
doi:10.1155/2008/713921

17. Song, Y., Y.-C. Jiao, T.-L. Zhang, G. Zhao, and F.-S. Zhang, "Small tapered slot antenna with a band-notched function for wireless applications ," Progress In Electromagnetics Research Letters, Vol. 10, 97-105, 2009.
doi:10.2528/PIERL09062003

18. Zhu, F., S. Gao, A. T. S. Ho, R. A. Abd-Alhameed, C. H. See, J. Li, and J. Xu, "Miniaturized tapered slot antenna with signal rejection in 5--6-GHz band using a balun," IEEE Antennas Wireless Propag. Lett., Vol. 11, 507-510, 2012.

19. Yoon, I. J., H. Kim, H. K. Yoon, Y. J. Yoon, and Y. H. Kim, "Ultra-wideband tapered slot antenna with band cutoff characteristic ," Electron. Lett., Vol. 41, No. 11, 629-630, 2005.
doi:10.1049/el:20050876

20. Ma, T. G. and S. K. Jeng, "A planar tapered-slot-fed annular slot antenna with band-notched characteristics for ultra-wideband radios," IEICE Trans. Fundamentals, Vol. E88-A, No. 9, 2384-2386, 2005.
doi:10.1093/ietfec/e88-a.9.2384

21. Zhu, F., S. Gao, A. T. S., Ho, R. A. Abd-Alhameed, C. H. See, J. Li, and J. Xu, "Dual band-notched tapered slot antenna using λ4 band-stop filters," IET Microw. Antennas Propag., Vol. 6, No. 15, 1665-1673, 2012.
doi:10.1049/iet-map.2012.0502

22. Lee, D. H., H. Y. Yang, and Y. K. Cho, "Tapered slot antenna with band-notched function for ultrawideband radios," IEEE Antennas Wireless Propag. Lett., Vol. 5, 495-498, 2012.

23. Schuppert, B., "Microstrip/slotline transition: Modeling and experimental investigation," IEEE Trans. on Microwave Theory and Tech., Vol. 36, No. 8, 1272-1282, 1988.
doi:10.1109/22.3669

24. Lin, C. C., P. Jin, and R. W. Ziolkowski, "Single, dual, and triband-notched ultrawideband (UWB) antennas using capacitively loaded loop (CLL) resonators," IEEE Trans. on Antennas and Propag., Vol. 60, No. 1, 102-109, 2012.
doi:10.1109/TAP.2011.2167947

25. Antonino-Daviu, E., M. Cabedo-Fabres, M. Ferrando-Bataller and V. M. Rodrigo-Penarrocha, "Modal analysis and design of Antennas and Propag.,", Vol. 58, No. 5, 1457-1467, 2010.
doi:10.1109/TAP.2010.2044323

26. Dissanayake, T. and K. P. Esselle, "Prediction of the notch frequency of slot loaded printed UWB antennas," IEEE Trans. on Antennas and Propag., Vol. 55, No. 11, 3320-33265, 2007.
doi:10.1109/TAP.2007.908792

27. Gupta, K. C., R. Garg, and I. J. Bahl, , Microstrip Lines and Slotlines, Artech House, 1979.

28. Pozar, D. M., "Microwave Engineering," John Wiley & Sons, Inc., 1998.

29. Das, N. K., "Generalized multiport reciprocity analysis of surface-to-surface transitions between multiple printed transmission lines," IEEE Tran. on Microwave Theory and Tech., Vol. 41, No. 6, 1164-1177, 1993.
doi:10.1109/22.238542

30. Schmuckl, F. J., "The method of lines for the analysis of rectangular spiral inductors," IEEE Tran. on Microwave Theory and Tech., Vol. 54, No. 4, 1183-1186, Apr. 2006.