A Balanced Symmetrical Branch-Line Microstrip Coupler for 5G Applications
Abstract
:1. Introduction
2. Design of Resonator, Filters and Coupler
3. Results and Comparison
4. Conclusions
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Refs. | Advantages | Disadvantages | Design Method | Applications |
---|---|---|---|---|
[5] | Balanced phase | No filtering response | Calculation of the reflection coefficient | WLAN-5G |
[6] | --- | No filtering response, Phase unbalance | Analysis of the ABCD matrix of a transmission line | 5G |
[7] | Filtering response, Compact size | High losses | No mathematical design | GSM |
[8] | Novel structure | Phase unbalance | No mathematical design | 5G |
[9] | --- | Phase unbalance, Magnitude unbalance, No filtering response | Calculation of the line impedance and power ratio between output ports | 5G |
[10] | --- | No filtering response, High loss, Phase unbalance, Magnitude unbalance | No mathematical design | WiMAX-5G |
[12] | --- | No filtering response | No mathematical design | 5G |
[13] | Low losses | No filtering response, Phase unbalance | Calculation of the input impedance of the basic resonator | WLAN-5G |
[16] | Filtering response, Novel structure | Large size, Phase unbalance | Obtaining the output-input voltage ratio | 5G |
Refs | fo (GHz) | FR | LFSH (GHz) | S21 (dB) | S31 (dB) | PU (Degree) | S41 (dB) | Size (mm2/λg2) |
---|---|---|---|---|---|---|---|---|
Our coupler | 5.2 | Yes | 15.5 | −3.28 | −3.56 | 0.1 | 28.2 | 83.2/0.04 |
[5] | 2.4 | No | No | −3.3 | −3.3 | 0.09 | 42.9 | 175.1/0.023 |
[6] | 2 | No | No | −3.1 | −3.4 | 3 | 26 * | 1322/--- |
[7] | 0.93 | Yes | 1.3 * | −3.5 | −3.5 | --- | Better than 20 | 673/0.017 |
[8] | 2 | Yes | 4.5 * | −3.11 | −3.39 | 1 | --- | 265.69/--- |
[9] | 2.9–4.1 | No | No | −5 | −3 ± 1 | 10 | 21 * | 1524.24/--- |
[10] | 3 | No | No | −7.38 | −2.25 | 2.3 | 21.5 | 819/--- |
[11] | 6.3 | No | No | −4.07 | −4.39 | 2.1 | 30 * | 2218/--- |
[12] | 1.07 | No | No | −3.3 | −3.3 | 1 | 24.2 | 204.9/--- |
[13] | 5.7 | No | No | −2.3 | −2.6 | 0.8 | 19.4 | 110/0.042 |
[14] | 2.17 ** | Yes | No | --- | --- | 5 | 15 | ---/0.448 |
[15] | 20–28.7 | No | No | −3 ± 1 | −3 ± 0.8 | 3 | 15 * | 595/0.307 * |
[16] | 2.8 | Yes | 7 | −3.3 | −2.9 | 0.97 | 31.3 | 710/0.075 |
[17] | 3.5 | No | No | −2.97 | −3.65 | 3.6 | 24.46 | 493/0.049 |
[18] | 1.87 | Yes | No | --- | --- | 3 | Better than 20 | ---/0.138 |
[19] | 1.8 | No | No | −2.9 | −3.2 | 0.01 | 40 | 192.7/0.011 |
[20] | --- | Yes | No | −3.6 ± 0.5 | −3.6 ± 0.5 | --- | Better than 20 | 1157.5/0.2379 * |
[21] | 2.4 | No | No | −3 | −3.08 | 0.037 | 30 | 354.75/0.037 |
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Share and Cite
Yahya, S.I.; Zubir, F.; Nouri, L.; Hazzazi, F.; Yusoff, Z.; Chaudhary, M.A.; Assaad, M.; Rezaei, A.; Nguyen Le, B. A Balanced Symmetrical Branch-Line Microstrip Coupler for 5G Applications. Symmetry 2023, 15, 1598. https://doi.org/10.3390/sym15081598
Yahya SI, Zubir F, Nouri L, Hazzazi F, Yusoff Z, Chaudhary MA, Assaad M, Rezaei A, Nguyen Le B. A Balanced Symmetrical Branch-Line Microstrip Coupler for 5G Applications. Symmetry. 2023; 15(8):1598. https://doi.org/10.3390/sym15081598
Chicago/Turabian StyleYahya, Salah I., Farid Zubir, Leila Nouri, Fawwaz Hazzazi, Zubaida Yusoff, Muhammad Akmal Chaudhary, Maher Assaad, Abbas Rezaei, and Binh Nguyen Le. 2023. "A Balanced Symmetrical Branch-Line Microstrip Coupler for 5G Applications" Symmetry 15, no. 8: 1598. https://doi.org/10.3390/sym15081598
APA StyleYahya, S. I., Zubir, F., Nouri, L., Hazzazi, F., Yusoff, Z., Chaudhary, M. A., Assaad, M., Rezaei, A., & Nguyen Le, B. (2023). A Balanced Symmetrical Branch-Line Microstrip Coupler for 5G Applications. Symmetry, 15(8), 1598. https://doi.org/10.3390/sym15081598