Abstract
The manuscript contributes a novel triple band integrated reconfigurable filtering antenna for wideband and narrowband applications. First, a compact dual band reconfigurable filter is conferred composed of two folded half-wavelength high impedance T-shaped resonators. The lower half of the feed lines comprises T-shaped resonator to obtain a passband from 2.8 to 3.5 GHz in order to cater WiMax band. The resonator at the upper half of the feed lines generates a passband from 5.15 to 5.75 GHz for WLAN operations. A transmission line is inserted underneath the feeding line to establish additional transmission zeroes. Two uniform impedance resonators (UIRs) are incorporated to the proposed dual band filter so that it can discard a band from 5.35 to 5.45 GHz by creating a notch at 5.4 GHz. Presence of notch band separates the WLAN band into two sub-bands. Thus, the proposed dual band filter can be easily reconfigured to a triple band bandpass filter. Later, a broadband antenna is implemented using a ground ring and an inverted L-shaped resonator which is radiating from 2.6 to 6 GHz. In the end, the filter is integrated with the antenna structure to develop the suggested triple-band reconfigurable filtering antenna. The developed filtering antenna is fabricated that perceives a fine agreement between the measured and the simulated response.
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Research ethics: Not applicable.
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Informed consent: Not applicable.
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Author contributions: In this work, the authors contribute a new triple band reconfigurable filtering antenna with compact size and good harmonic suppression. The approached filtering antenna supports easier switching from dual band to triple band and single band and also non-radiating configurations or inversely to mitigate the user’s frequency band of interest. High frequency selectivity, good return loss characteristics and harmonic suppression up to 7 GHz are accomplished using recommended filter. It is useful for both wideband and narrowband applications. The suggested filtering antenna possesses satisfactory gain for all radiating states as compared to the other reported prototypes.
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Use of Large Language Models, AI and Machine Learning Tools: None declared.
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Conflict of interest: No conflict of interest.
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Research funding: None declared.
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Data availability: Not applicable.
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© 2024 Walter de Gruyter GmbH, Berlin/Boston
Artikel in diesem Heft
- Frontmatter
- Research Articles
- Reconfigurable frequency selective surface based absorber realized using interlocking blocks
- Dual band beam steering antenna using branch line coupler network for higher band applications
- High-efficiency quad-band RF energy harvesting system with improved cross-coupled differential-drive rectifier
- A novel miniaturized microstrip filtering power divider with high selectivity based on composite right/left-handed (CRLH) concept
- High-selectivity wideband bandpass filter based on quintuple-mode stub-loaded resonator and defected ground structures
- Design of a high selective triple band integrated reconfigurable filtering antenna for wideband and narrowband applications
- A novel ultra-wideband end-fire antenna based on spoof surface plasma polaritons
- Metamaterial-based transmit and receive antennas for wireless image transfer at 5.8 GHz
- Design of a MIMO implantable antenna with ultra-miniaturized volume and reduced SAR
- ANN modeling for predicting muscle-implanted antenna performance for skin and fat thickness variations at 2.45 GHz
Artikel in diesem Heft
- Frontmatter
- Research Articles
- Reconfigurable frequency selective surface based absorber realized using interlocking blocks
- Dual band beam steering antenna using branch line coupler network for higher band applications
- High-efficiency quad-band RF energy harvesting system with improved cross-coupled differential-drive rectifier
- A novel miniaturized microstrip filtering power divider with high selectivity based on composite right/left-handed (CRLH) concept
- High-selectivity wideband bandpass filter based on quintuple-mode stub-loaded resonator and defected ground structures
- Design of a high selective triple band integrated reconfigurable filtering antenna for wideband and narrowband applications
- A novel ultra-wideband end-fire antenna based on spoof surface plasma polaritons
- Metamaterial-based transmit and receive antennas for wireless image transfer at 5.8 GHz
- Design of a MIMO implantable antenna with ultra-miniaturized volume and reduced SAR
- ANN modeling for predicting muscle-implanted antenna performance for skin and fat thickness variations at 2.45 GHz