4.6 Article

Compact Slit-Loaded ACS-Fed Monopole Antenna for Bluetooth and UWB Systems With WLAN Band-Stop Capability

期刊

IEEE ACCESS
卷 11, 期 -, 页码 7540-7550

出版社

IEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC
DOI: 10.1109/ACCESS.2023.3238577

关键词

Antennas; Wireless LAN; Ultra wideband antennas; Coplanar waveguides; Bandwidth; Bluetooth; Transmitting antennas; ACS-fed; compact; monopole; UWB; band-notch

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In this paper, a compact asymmetric coplanar strip (ACS)-fed monopole antenna is proposed for simultaneous operation within the Bluetooth and UWB frequency bands while rejecting the lower WLAN interfering band. The antenna achieves this by incorporating inverted right triangle patch monopole and open-ended L-shaped slits. The prototype of the antenna demonstrates excellent performance with a small size and stable omni-directional radiation patterns.
A compact asymmetric coplanar strip (ACS)-fed monopole antenna is presented, which operates within the Bluetooth and UWB frequency bands with the capability to simultaneously reject the lower WLAN interfering band. The antenna consists of an inverted right triangle patch monopole loaded by open-ended L-shaped slits not only to produce the additional 2.4 GHz passband to the UWB design but also to achieve stopband characteristics around 5.2 GHz. The conceptual equivalent circuit model as well as characteristic mode analyses are carried out in the design evolution process. The proposed antenna has an overall size of only 20 mm x 10 mm, having the smallest area among the so far developed designs, which can be easily integrated within any wireless gadgets. A prototype is fabricated and measured to validate the design, demonstrating the predicted behavior fairly achieved by full-wave analysis. The antenna -10 dB operating bandwidth ranges from 2.38 to 2.42 GHz and from 3.35 to 11 GHz while rejecting from 4.69 to 5.2 GHz. Unlike the unwanted stopband, where the radiation characteristics are adequately deteriorated, the proposed antenna fairly provides stable omni-directional radiation patterns in the H-plane, and has an average efficiency (gain) of 87.3% (2.6 dBi) in the desired passband. As far as the antenna transient behavior is concerned, an adequate measured (simulated) system fidelity factor of 0.7 (0.68) is achieved for the transmission of impulse-type UWB signals in the face-to-face configuration.

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