2008
DOI: 10.1002/mop.23582
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The band‐notch function for a printed ultra‐wideband monopole antenna with E‐shaped slot

Abstract: In this study, a printed rectangular monopole antenna with a band‐notch function is proposed for ultra‐wideband (UWB) applications. The notched frequency band is achieved by embedding an E‐slot in the rectangular radiation patch. The notched frequency band can be controlled by adjusting the location, length, and the width of the slot. A design example for an UWB monopole antenna with a notched frequency band at 5 GHz is demonstrated. The antenna also shows omnidirectional radiation patterns across the whole op… Show more

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Cited by 25 publications
(13 citation statements)
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“…The proposed antenna was simple but large in size. Likewise an antenna with a polygon slot etched in the ground plane along with two resonant slits and bevelled T-shape stub for excitation has been reported [12]. A dual band notch characteristics is reported in a compact microstrip fed planar antenna by embedding a U-shape defected ground structure and an E-shape slot in the radiation patch for eliminating WiMax and WLAN bands respectively [13].…”
Section: Fig 1 Proposed Uwb Antenna With Triple Notch Bandmentioning
confidence: 98%
“…The proposed antenna was simple but large in size. Likewise an antenna with a polygon slot etched in the ground plane along with two resonant slits and bevelled T-shape stub for excitation has been reported [12]. A dual band notch characteristics is reported in a compact microstrip fed planar antenna by embedding a U-shape defected ground structure and an E-shape slot in the radiation patch for eliminating WiMax and WLAN bands respectively [13].…”
Section: Fig 1 Proposed Uwb Antenna With Triple Notch Bandmentioning
confidence: 98%
“…One of the major components in UWB system is the antennae, which is a challenging task to design due to its 110% impedance bandwidth. In recent times, a number of planar monopole antennas [2][3][4][5][6][7][8][9] have been developed for UWB applications. These antennas have benefits like low profile, ease of fabrication, large bandwidth, and stable radiation characteristics.…”
Section: Introductionmentioning
confidence: 99%
“…Recent researches have dealt with bandwidth improvement and impedance optimization of the printed dipole [2][3][4][5]. In recent years, there has been a growing interest on photonic bandgap (PBG) structures to design low profile high-performance antennas for wireless applications [5][6][7][8]. Such structures have attracted a great deal of interest among researchers due to their ability to influence the propagation of electromagnetic waves.…”
Section: Introductionmentioning
confidence: 99%