A Compact High-Isolation Four-Element MIMO Antenna with Asymptote-Shaped Structure
Abstract
:1. Introduction
- Adoption of a stepped rectangular radiation patch and placement of the four elements orthogonally to each other to achieve a compact antenna size and improve antenna isolation.
- Use of an asymptote-shaped microstrip feeder to expand the bandwidth.
- Use of windmill and rotating extended cross-shaped decoupling structures to improve antenna isolation.
- Combination of all the above optimizations to achieve good characteristics in terms of bandwidth, size, and isolation.
2. Antenna Design
3. Results and Discussions
3.1. Fabrication and Measurement
3.2. MIMO System Parameters
3.3. Far-Field Radiation Characteristics
4. Conclusions
- Wide bandwidth: The antenna has the ability to operate over a wide frequency range, enabling it to support high data rates and a large number of applications.
- Multipath mitigation: MIMO technology can effectively mitigate the effects of multipath fading, which is a common problem in wireless communication systems. This can lead to improved signal quality and higher data rates.
- Interference resistance: UWB technology is known for its ability to resist interference, making the proposed design well-suited for use in crowded environments where multiple wireless devices are in use.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Parameters | Dimensions (mm) | Parameters | Dimensions (mm) | Parameters | Dimensions (mm) |
---|---|---|---|---|---|
W | 42 | Wf2 | 1 | Wq4 | 2.2 |
L | 42 | Lf1 | 3.2 | R1 | 3.4 |
H | 1 | Lq1 | 1 | R2 | 1.8 |
Wp | 14 | Wq1 | 1.56 | Lj | 17.85 |
Lp | 12 | Lq2 | 2.4 | Lz1 | 17 |
Lg | 10 | Wq2 | 3.2 | Wz1 | 0.4 |
Wg | 15 | Lq3 | 1.8 | Lz2 | 0.4 |
g | 1 | Wq3 | 4 | Wz2 | 3.6 |
Wf1 | 2 | Lq4 | 1.8 |
Refs. | Substrate | Size | Operating Frequency (GHz) | Gain (dBi) | Isolation (dB) | ECC |
---|---|---|---|---|---|---|
[7] | Neltec | 3∼15 | 0.5∼5 | >15 | <0.5 | |
[9] | FR4 | 60 × 60 × 1.6 | 3∼11 | >3.4 | >20 | <0.02 |
[27] | FR4 | 58 × 58 × 0.8 | 3∼13.5 | 2.2∼4 | >22 | <0.008 |
[29] | Rogers RT/duriod5880 | 16 × 71.5 × 0.254 | 3.2∼14 | 3∼5.6 | >22 | <0.006 |
[30] | Taconic RF-45 | 38.3 × 38.3 × 0.8 | 3∼13.2 | 0.5∼6.3 | >17 | <0.03 |
[35] | FR4 | 50 × 50 × 1.6 | 3.1∼10.6 | 2∼6 | >17 | <0.02 |
[36] | FR4 | 56.1 × 67.9 × 2.3 | 3.89∼17.09 | 3.4∼6.8 | >15 | <0.02 |
[37] | FR4 | 42 × 42 × 1.6 | 3∼11 | 3∼4.5 | >15 | <0.05 |
[38] | FR4 | 65 × 65 × 1.6 | 3.1∼10.6 | N/A | >15 | <0.025 |
[39] | FR4 | 75.19 × 75.19 × 1.6 | 3.1∼17.3 | 1∼5 | >15 | <0.1 |
Prop. | FR4 | 42 × 42 × 1 | 3.09∼12 | 2∼5.1 | >16.4 | <0.02 |
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Wu, A.; Tao, Y.; Zhang, P.; Zhang, Z.; Fang, Z. A Compact High-Isolation Four-Element MIMO Antenna with Asymptote-Shaped Structure. Sensors 2023, 23, 2484. https://doi.org/10.3390/s23052484
Wu A, Tao Y, Zhang P, Zhang Z, Fang Z. A Compact High-Isolation Four-Element MIMO Antenna with Asymptote-Shaped Structure. Sensors. 2023; 23(5):2484. https://doi.org/10.3390/s23052484
Chicago/Turabian StyleWu, Aiting, Yingxiang Tao, Pengquan Zhang, Zhonghai Zhang, and Zhihua Fang. 2023. "A Compact High-Isolation Four-Element MIMO Antenna with Asymptote-Shaped Structure" Sensors 23, no. 5: 2484. https://doi.org/10.3390/s23052484
APA StyleWu, A., Tao, Y., Zhang, P., Zhang, Z., & Fang, Z. (2023). A Compact High-Isolation Four-Element MIMO Antenna with Asymptote-Shaped Structure. Sensors, 23(5), 2484. https://doi.org/10.3390/s23052484