Document Type : Reseach Article

Authors

1 Department of Electrical Engineering, Sanandaj Branch, Islamic Azad University, Sanandaj, Iran.

2 Department of Electrical Engineering, Kermanshah Branch, Islamic Azad University, Kermanshah, Iran

Abstract

A Harmonic Control Circuit (HCC) is one of the most important blocks in the Class-F power amplifiers, which should pass the even harmonics and suppress the odd harmonics. Long open stubs are usually used to suppress odd harmonics in the conventional Class-F power amplifiers, which resulted in the large size of the amplifiers. In this work, two Class-F amplifiers are designed, a simple amplifier with traditional HCC and proposed PA with a proposed HCC. The proposed HCC suppresses third, fifth and seventh harmonics and easily pass second, fourth and sixth harmonics. In the proposed amplifier with proposed HCC, the design parameters are improved compared to the simple Class-F with traditional HCC. The power added efficiency (PAE), drain efficiency (DE) and gain parameters are increased from 76%, 79% and 19.4 dB to 79.2%, 82.2% and 21.2 dB, respectively. The proposed PA is fabricated, measured and results show that the proposed PA correctly works at 0.9 GHz with 0.12 GHz bandwidth.

Keywords

  • [1] Colantonio, F. Giannini, E. Limiti, “High Efficiency RF and Microwave Solid State Power Amplifiers,” John Wiley & Sons, 2009.
  • [2] H. Raab, “An introduction to class-F power amplifiers,”  RF Design 19 (5) , pp. 79–84, 1996.
  • [3] Roshani, and So. Roshani, “Design of a high efficiency class-F power amplifier with large signal and small signal measurements,” Measurement, Vol. 149, pp.1069-1091, 2020.
  • [4] Aggrawal, K. Rawat, and P. Roblin, “Investigating continuous class-F power amplifier using nonlinear embedding model, ” IEEE Microwave and Wireless Components Letters, Vol. 27, pp.593-595, 2017.
  • [5] A. Beltran, “Class-F and inverse class-F power Amplifier loading networks design based upon transmission zeros,” presented at the IEEE MTT-S International Microwave Symposium, pp. 1-4, Tampa, FL, USA, 2014.
  • [6] Carrubba, A. L. Clarke, M. Akmal, J. Lees, J. Benedikt, P.J. Tasker, and S.C. Cripps, “On the extension of the continuous class-F mode power amplifier, IEEE Transactions on Microwave Theory and Techniques, Vol. 59, pp.1294-1303, 2011.
  • [7] Carrubba, M. Akmal, R. Quay, J. Lees, J. Benedikt, S.C. Cripps,  and P.J Tasker, “The continuous inverse class-F mode with resistive second-harmonic impedance, ” IEEE Transactions on Microwave Theory and Techniques, Vol. 60, pp.1928-1936, 2012.
  • [8] Chen, Q. Xue, “A class-F power amplifier with CMRC, ” IEEE Microwave and Wireless components letters, Vol. 21, pp. 31-33, 2010.
  • [9] Chen, and D. Peroulis, “A 3.1-GHz class-F power amplifier with 82% power-added-efficiency, ” IEEE Microwave and Wireless Components Letters, Vol. 23, pp.436-438, 2013.
  • [10] Y. Guo, X.Y. Zhang, J.X. Xu, Y.C. Li, and Q. Xue,  “Bandpass class-F power amplifier based on multifunction hybrid cavity microstrip filter, ”  IEEE Transactions on Circuits and Systems II: Express Briefs, Vol. 64, pp.742-746, 2016.
  • [11] Kim, “Highly efficient asymmetric class F- 1/F GaN Doherty amplifier, ” IEEE Transactions on Microwave Theory and Techniques, Vol. 66, pp.4070-4077, 2018.
  • [12] W. Li, and H. Wang, “A continuous-mode 23.5-41GHz hybrid class-F/F-l power amplifier with 46% peak PAE for 5G massive MIMO applications,” presented at the IEEE Radio Frequency Integrated Circuits Symposium (RFIC). pp. 220-230, Philadelphia, USA. 2018.
  • [13] Pirasteh, Sa. Roshani, and So. Roshani, “Design of a miniaturized class F power amplifier using capacitor loaded transmission lines,” Frequenz, Vol. 74, pp.145-152, 2020.
  • [14] Nikandish, E. Babakrpur, and A. Medi, “A harmonic termination technique for single-and multi-band high-efficiency class-F MMIC power amplifiers,” IEEE Transactions on Microwave Theory and Techniques, Vol. 62, pp. 1212-1220,  2014.
  • [15] Yang, J. Xia, Y. Guo, and A. Zhu, A. “Highly efficient broadband continuous inverse class-F power amplifier design using modified elliptic low-pass filtering matching network,” IEEE Transactions on Microwave Theory and Techniques, Vol. 64, pp.1515-1525, 2016.
  • [16] Y. Zheng, Z.W. Liu, X.Y. Zhang, X.Y. Zhou, and W.S. Chan, “Design of ultra-wide band high-efficiency extended continuous class-F power amplifier,” IEEE Transactions on Industrial Electronics, Vol. 65, pp. 4661-4669, 2017.
  • [17] Poluri, and M.M. De Souza, “High-Efficiency Modes Contiguous with Class B/J and Continuous Class F-1 Amplifiers,” IEEE Microwave and Wireless Components Letters, Vol. 29, pp. 137-139, 2019.
  • [18] Sharma, ER. Srinidhi, R. Darraji, DG. Holme, J. Staudinger, JK. Jones, F.M. Ghannouchi, “High-efficiency input and output harmonically engineered power amplifiers,” IEEE Transactions on Microwave Theory and Techniques. Vol. 66, pp.1002-14, 2017.
  • [19] Pirasteh, Sa. Roshani, and So. Roshani, “A modified class-F power amplifier with miniaturized harmonic control circuit,” AEU-International Journal of Electronics and Communications, Vol. 97, pp.202-209, 2018.
  • [20] Huang, J. Liu. High-efficiency class-F power amplifier based on double spiral defected ground structure,” International Journal of Electronics. 2023.
  • [21] Abbasian, T. Johnson, “Power efficiency characteristics of class-F and inverse class-F synchronous rectifiers,” IEEE Transactions on Microwave Theory and Techniques, Vol. 64, pp. 4740-4751, 2016.
  • [22] Schmelzer, and S.I. Long, “A GaN HEMT Class F Amplifier at 2 GHz with 80% PAE,” IEEE Journal of Solid-State Circuits, Vol. 42, pp.2130-2136, 2007.
  • [23] X. Xu, X.Y. Zhang, and X.Q. Song, “High-efficiency filter-integrated class-F power amplifier based on dielectric resonator,” IEEE Microwave and wireless components Letters, Vol. 27, pp.827-829, 2017.
  • [24] Chen, Q. Xue, “A class-F power amplifier with CMRC,” IEEE Microwave and Wireless components letters, Vol. 21, pp. 31-33, 2010.
  • [25] C. Chang, Y. Hahn, P. Roblin, and T.W. Barton,  “New mixed-mode design methodology for high-efficiency out phasing chireix amplifiers,” IEEE Transactions on Circuits and Systems I, Vol. 66, pp.1594-1607, 2018.
  • [26] Sharma, J. Roberts, D.G. Holmes, R. Darraji, J.K. Jones, and F.M. Ghannouchi, “On the double-inflection characteristic of the continuous-wave AM/AM in class-F-1 power amplifiers,” IEEE Microwave and Wireless Components Letters, Vol. 28, pp.1131-1133, 2018.
  • [27] Kim, “2.4 GHz Class-F-1 GaN Doherty Amplifier With Efficiency Enhancement Technique,” IEEE Microwave and Wireless Components Letters, Vol. 28, pp.34-36, 2017.
  • [28] Parnianchi,“High-efficiency class-F Power amplifier with a new design of input matching network,” International Journal of Circuits, Systems and Signal Processing, Vol. 16, pp.865-873, 2022.
  • [29] Sajedin, M., I. T. Elfergani, J. Rodriguez, M. Violas, A.S. Asharaa, R.A. Abd-Alhameed, M. Fernandez-Barciela, and A.M. Abdulkhaleq, “Multi-Resonant Class-F Power Amplifier Design for 5G Cellular Networks,” RADIOENGINEERING, 2021.