Super-Wide Impedance Bandwidth Planar Antenna for Microwave and Millimeter-Wave Applications
Abstract
:1. Introduction
2. Proposed Microstrip Antenna Structure
3. Comparison with Other Recent Designs
4. Conclusions
Author Contributions
Funding
Conflicts of Interest
References
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L1 | 14.7 mm | W1 | 17.5 mm |
L2 | 4.3 mm | W2 | 5.3 mm |
L3 | 4.5 mm (λ0/4) | W3 | 0.3 mm (50 Ω) |
L4 | 4.3 mm (0.52 × L2) | W4 | 0.52 mm (0.1 × W2) |
L5 | 2.4 mm (λ0/4) | W5 | 0.3 mm (50 Ω) |
L6 | 2.4 mm (λ0/4) | W6 | 0.32 mm (0.6 × W2) |
Radiation Gain (with No Slot) | ||
Minimum | Maximum | Average |
5.75 dBi | 12.53 dBi | 8 dBi |
Radiation Gain (with Slot) | ||
7.88 dBi | 15.11 dBi | 12 dBi |
Improvement | ||
2.13 dBi | 2.58 dBi | 4 dBi |
Radiation Efficiency (with No Slot) | ||
Minimum | Maximum | Average |
60.82% | 73.25% | 66% |
Radiation Efficiency (with Slot) | ||
67.41% | 85.79% | 78% |
Improvement | ||
6.95% | 12.54% | 12% |
Refs. | Technique | Antenna Size (mm3) | Dielectric Constant | Operating Frequency (GHz) |
---|---|---|---|---|
[15] | CPW-fed antenna | 24 × 30.5 × 1.5 | 3.38 | 3.1–10.6 |
[16] | Inverted L-resonator & circular slotted GND | 40 × 30 × 1.2 | 4.4 | 3.1–10.6 |
[17] | Annular slot | 26 × 24 × 1.6 | 4.6 | 3–10.6 |
[18] | Rectangular slots | 16 × 14 × 1 | 4.4 | 3.2–10 |
[19] | Circular slots | 30 × 26 × 1.6 | 4.4 | 2.5–11 |
[20] | Inverted U-strip | 45 × 50 × 1.27 | 6.0 | 3.1–10.6 |
[21] | Split ring resonators | 30 × 26 × 1.6 | 3.5 | 2.4–10.1 |
[22] | lamp shaped antenna | 28×15× 1.6 | 4.4 | 2.7–14 |
[23] | Cap. Integrated antenna | 30.5 × 24 × 1.5 | 3.3 | 3.1–10.6 |
[24] | L-shaped stub | 46 × 42 × 1 | 4.4 | 3.1–10.6 |
[25] | Loading quarter wavelength resonating strip | 38 × 30 × 1.6 | 4.4 | 3.1–10.6 and 2.4–2.5 |
[26] | Loading TL-MTM within UWB antenna | 38.5 × 46.4 × 1.6 | 4.4 | 3.1–10.6 and 2.43–2.49 |
[27] | Half elliptical ring with a U-shaped slot | 32 × 32.6 × 1.6 | 4.4 | 3.1–10.6 |
[28] | Loading quarter wavelength resonating strip at the center of the patch | 50 × 24 × 1.6 | 4.4 | 3.1–11.4 and 2.18–2.59 |
[29] | Loading parasitic strip | 46 × 20 × 1.0 | 2.4 | 3.1–10.6 and 2.40–2.48 |
[30] | Loading quarter wavelength resonating strip at the center of the patch | 42 × 24 × 1.6 | 4.4 | 3.1–12.0 and 2.30–2.50 |
[31] | Loading strip-line to the patch | 45 × 32 × 1.0 | 4.4 | 3.1–10.6 and 2.40–2.50 |
[32] | Capacitors loaded miniaturized resonator in the ground plane | 30 × 31 × 1.5 | 3.38 | 3.1–10.6 and 2.4–2.48 |
[33] | Band-pass filter integration with combination of GCPW, grounded reflector, and CPW feed line | 35 × 24.4 × 2 | 3.38 | 2.8–6 |
[34] | Dielectric loading | 61 × 61 × 8 | ~4.0 | 1.6–12 |
This paper | SCRLH metamaterial | 14.7 × 17.5 × 0.13 | 3.0 | 20–120 |
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Alibakhshikenari, M.; Virdee, B.S.; See, C.H.; Abd-Alhameed, R.A.; Falcone, F.; Limiti, E. Super-Wide Impedance Bandwidth Planar Antenna for Microwave and Millimeter-Wave Applications. Sensors 2019, 19, 2306. https://doi.org/10.3390/s19102306
Alibakhshikenari M, Virdee BS, See CH, Abd-Alhameed RA, Falcone F, Limiti E. Super-Wide Impedance Bandwidth Planar Antenna for Microwave and Millimeter-Wave Applications. Sensors. 2019; 19(10):2306. https://doi.org/10.3390/s19102306
Chicago/Turabian StyleAlibakhshikenari, Mohammad, Bal Singh Virdee, Chan H. See, Raed A. Abd-Alhameed, Francisco Falcone, and Ernesto Limiti. 2019. "Super-Wide Impedance Bandwidth Planar Antenna for Microwave and Millimeter-Wave Applications" Sensors 19, no. 10: 2306. https://doi.org/10.3390/s19102306
APA StyleAlibakhshikenari, M., Virdee, B. S., See, C. H., Abd-Alhameed, R. A., Falcone, F., & Limiti, E. (2019). Super-Wide Impedance Bandwidth Planar Antenna for Microwave and Millimeter-Wave Applications. Sensors, 19(10), 2306. https://doi.org/10.3390/s19102306