Linear Hybrid Asymmetrical Load-Modulated Balanced Amplifier with Multi-Band Reconfigurability and Antenna-VSWR Resilience (2403.18250v1)
Abstract: This paper presents the first-ever highly linear and load-insensitive three-way load-modulation power amplifier (PA) based on reconfigurable hybrid asymmetrical load modulated balanced amplifier (H-ALMBA). Through proper amplitude and phase controls, the carrier, control amplifier (CA), and two peaking balanced amplifiers (BA1 and BA2) can form a linear high-order load modulation over wide bandwidth. Moreover, it is theoretically unveiled that the load modulation behavior of H-ALMBA can be insensitive to load mismatch by leveraging bias reconfiguration and the intrinsic load-insensitivity of balanced topology. Specifically, the PA's linearity and efficiency profiles can be maintained against arbitrary load mismatch through $Z_\mathrm{L}$-dependent reconfiguration of CA supply voltage ($V_\mathrm{DD,CA}$) and turning-on sequence of BA1 and BA2. Based on the proposed theory, an RF-input linear H-ALMBA is developed with GaN transistors and wideband quadrature hybrids. Over the design bandwidth from $1.7$-$2.9$ GHz, an efficiency of $56.8\%$$-$$72.9\%$ at peak power and $49.8\%$$-$$61.2\%$ at $10$-dB PBO are measured together with linear AMAM and AMPM responses. In modulated evaluation with 4G LTE signal, an EVM of $3.1\%$, ACPR of $-39$ dB, and average efficiency of up to $52\%$ are measured. Moreover, the reconfigurable H-ALMBA experimentally maintains an excellent average efficiency and linearity against arbitrary load mismatch at $2:1$ VSWR, and this mismatch-resilient operation can be achieved at any in-band frequencies. The overall measured performance favorably outperforms the state-of-the-art.
- N. Kumari, S.-H. Yang, K.-H. Chen, Y.-H. Lin, S.-R. Lin, and T.-Y. Tsai, “A CMOS switched-capacitor boost mode envelope tracking regulator with 4% efficiency improvement at 7.7 dB PAPR for 20MHz LTE envelope tracking RF power amplifiers,” in 2019 IEEE Asian Solid-State Circuits Conference (A-SSCC), pp. 255–258, 2019.
- K. Hamano, H. Shimizu, and K. Nishikawa, “Analysis of phase offset impact on millimeter-wave broadband Doherty amplifier MMIC,” in 2021 IEEE International Symposium on Radio-Frequency Integration Technology (RFIT), pp. 1–3, 2021.
- L. Lin, L. Yang, S. Zheng, and J. Peng, “A 10W fully-integrated LDMOS MMIC Doherty in LGA package for 2.7 GHz small cell application,” in 2019 IEEE MTT-S International Microwave Symposium (IMS), pp. 1434–1437, 2019.
- H. T. Nguyen and H. Wang, “A coupler-based differential Doherty power amplifier with built-in Baluns for high Mm-wave Linear-Yet-Efficient Gbit/s amplifications,” in 2019 IEEE Radio Frequency Integrated Circuits Symposium (RFIC), pp. 195–198, 2019.
- Y. Zhao, X. Li, C. Gai, X. Du, M. Helaoui, and F. Ghannouchi, “Optimal fundamental load modulation for Class-X harmonically tuned power amplifier,” in 2019 IEEE Asia-Pacific Microwave Conference (APMC), pp. 1649–1651, 2019.
- W. Lim, H. Kang, W. Lee, J. Bae, S. Oh, H. Oh, S. Chae, K. C. Hwang, K.-Y. Lee, and Y. Yang, “Dual-mode CMOS power amplifier based on load-impedance modulation,” IEEE Microwave and Wireless Components Letters, vol. 28, no. 11, pp. 1041–1043, 2018.
- Y. Cao and K. Chen, “Pseudo-Doherty load-modulated balanced amplifier with wide bandwidth and extended power back-off range,” IEEE Trans. Microw. Theory Techn., vol. 68, no. 7, pp. 3172–3183, 2020.
- D. J. Shepphard, J. Powell, and S. C. Cripps, “An efficient broadband reconfigurable power amplifier using active load modulation,” IEEE Microw. Wireless Compon. Lett., vol. 26, pp. 443–445, June 2016.
- P. H. Pednekar, W. Hallberg, C. Fager, and T. W. Barton, “Analysis and design of a Doherty-like RF-input load modulated balanced amplifier,” IEEE Trans. Microw. Theory Techn., vol. 66, pp. 5322–5335, Dec 2018.
- E. R. Srinidhi, M. Masood, T. Sharma, J. Staudinger, S. K. Dhar, P. Rashev, G. Tucker, and F. Ghannouchi, “Digitally assisted load modulated balanced amplifier for 200W cellular infrastructure applications,” in 2020 IEEE/MTT-S International Microwave Symposium (IMS), pp. 719–722, 2020.
- T. Cappello, P. H. Pednekar, C. Florian, Z. Popovic, and T. W. Barton, “Supply modulation of a broadband load modulated balanced amplifier,” in 2018 IEEE/MTT-S International Microwave Symposium - IMS, pp. 304–307, 2018.
- C. R. Chappidi, T. Sharma, Z. Liu, and K. Sengupta, “Load modulated balanced mm-Wave CMOS PA with integrated linearity enhancement for 5G applications,” in 2020 IEEE/MTT-S International Microwave Symposium (IMS), pp. 1101–1104, 2020.
- K. Vivien, P. E. de Falco, G. Baudoin, O. Venard, P. P. C. Felix, and T. Barton, “Load modulated balanced amplifier designed for AM-PM linearity,” in 2020 50th European Microwave Conference (EuMC), pp. 304–307, 2021.
- P. H. Pednekar, E. Berry, and T. W. Barton, “RF-input load modulated balanced amplifier with octave bandwidth,” IEEE Trans. Microw. Theory Techn., vol. 65, pp. 5181–5191, Dec 2017.
- R. Quaglia and S. Cripps, “A load modulated balanced amplifier for telecom applications,” IEEE Trans. Microw. Theory Techn., vol. 66, pp. 1328–1338, March 2018.
- J. Pang, C. Chu, Y. Li, and A. Zhu, “Broadband RF-input continuous-mode load-modulated balanced power amplifier with input phase adjustment,” IEEE Transactions on Microwave Theory and Techniques, vol. 68, no. 10, pp. 4466–4478, 2020.
- Y. Cao, H. Lyu, and K. Chen, “Asymmetrical load modulated balanced amplifier with continuum of modulation ratio and dual-octave bandwidth,” IEEE Trans. Microw. Theory Techn., vol. 69, no. 1, pp. 682–696, 2021.
- T. L. Marzetta, Fundamentals of massive MIMO. Cambridge University Press, 2016.
- L. Savy and M. Lesturgie, “Coupling effects in MIMO phased array,” in 2016 IEEE Radar Conference (RadarConf), pp. 1–6, 2016.
- C. Fager, T. Eriksson, F. Barradas, K. Hausmair, T. Cunha, and J. C. Pedro, “Linearity and efficiency in 5G transmitters: New techniques for analyzing efficiency, linearity, and linearization in a 5G active antenna transmitter context,” IEEE Microw. Mag., vol. 20, pp. 35–49, May 2019.
- K.-H. Chen and J.-F. Kiang, “Effect of mutual coupling on the channel capacity of MIMO systems,” IEEE Transactions on Vehicular Technology, vol. 65, no. 1, pp. 398–403, 2015.
- X. Chen, S. Zhang, and Q. Li, “A review of mutual coupling in MIMO systems,” IEEE Access, vol. 6, pp. 24706–24719, 2018.
- M. Gilasgar, A. Barlabé, and L. Pradell, “A 2.4 GHz CMOS Class-F power amplifier with reconfigurable load-impedance matching,” IEEE Transactions on Circuits and Systems I: Regular Papers, vol. 66, no. 1, pp. 31–42, 2019.
- J. Chen, X. Meng, M. Zhou, and Y. Jin, “Bonding wire based RF front-end tunable impedance matching network for K and Ka bands,” in 2021 Cross Strait Radio Science and Wireless Technology Conference (CSRSWTC), pp. 313–315, 2021.
- Y.-C. Lee and J.-S. Fu, “A 5.8-GHz power amplifier with an on-chip tunable output matching network,” in Asia-Pacific Microwave Conference 2011, pp. 219–222, 2011.
- F. Ziraksaz and A. Hassanzadeh, “A 23.4-31.9 GHz tunable RF-MEMS impedance matching network for 5G power amplifier,” in 2021 29th Iranian Conference on Electrical Engineering (ICEE), pp. 69–73, 2021.
- N. S. Mannem, M.-Y. Huang, T.-Y. Huang, and H. Wang, “A reconfigurable hybrid series/parallel Doherty power amplifier with antenna VSWR resilient performance for MIMO arrays,” IEEE Journal of Solid-State Circuits, vol. 55, no. 12, pp. 3335–3348, 2020.
- H. Lyu and K. Chen, “Balanced-to-Doherty mode-reconfigurable power amplifier with high efficiency and linearity against load mismatch,” IEEE Trans. Microw. Theory Techn., pp. 1–1, 2020.
- H. Lyu, Y. Cao, and K. Chen, “Linearity-enhanced quasi-balanced Doherty power amplifier with mismatch resilience through series/parallel reconfiguration for massive MIMO,” IEEE Transactions on Microwave Theory and Techniques, vol. 69, no. 4, pp. 2319–2335, 2021.
- H. Lyu and K. Chen, “Analysis and design of reconfigurable multiband mismatch-resilient quasi-balanced Doherty power amplifier for massive MIMO systems,” IEEE Transactions on Microwave Theory and Techniques, pp. 1–12, 2022.
- C. R. Chappidi, T. Sharma, and K. Sengupta, “Multi-port active load pulling for mm-Wave 5G power amplifiers: Bandwidth, back-off efficiency, and VSWR tolerance,” IEEE Trans. Microw. Theory Techn., vol. 68, no. 7, pp. 2998–3016, 2020.
- C. F. Gonçalves, F. M. Barradas, L. C. Nunes, P. M. Cabral, and J. C. Pedro, “Dynamic supply voltage control for PA output power correction under variable loading scenarios,” IEEE Transactions on Microwave Theory and Techniques, vol. 69, no. 1, pp. 745–755, 2021.
- G. D. Singh, H. M. Nemati, and L. C. N. de Vreede, “A low-loss load correction technique for self-healing power amplifiers using a modified two-tap six-port network,” IEEE Transactions on Microwave Theory and Techniques, vol. 69, no. 9, pp. 4069–4081, 2021.
- Y. Cao, H. Lyu, and K. Chen, “Continuous-mode hybrid asymmetrical load-modulated balanced amplifier with three-way modulation and multi-band reconfigurability,” IEEE Transactions on Circuits and Systems I: Regular Papers, vol. 69, no. 3, pp. 1077–1090, 2022.
- H. Lyu and K. Chen, “Hybrid load-modulated balanced amplifier with high linearity and extended dynamic range,” IEEE Microwave and Wireless Components Letters, vol. 31, no. 9, pp. 1067–1070, 2021.
- J. Guo and K. Chen, “Load-modulated double-balanced amplifier with quasi-isolation to load,” in 2023 IEEE Wireless and Microwave Technology Conference (WAMICON), pp. 144–147, 2023.
- J. Guo, Y. Cao, and K. Chen, “1-d reconfigurable pseudo-doherty load modulated balanced amplifier with intrinsic vswr resilience across wide bandwidth,” IEEE Transactions on Microwave Theory and Techniques, vol. 71, no. 6, pp. 2465–2478, 2023.
- J. Guo and K. Chen, “Reconfigurable hybrid asymmetrical load modulated balanced amplifier with high linearity, wide bandwidth, and load insensitivity,” in 2023 IEEE/MTT-S International Microwave Symposium - IMS 2023, pp. 462–465, 2023.
- N. B. Vangipurapu, H. Lyu, Y. Cao, and K. Chen, “Intrinsically mode-reconfigurable load-modulation power amplifier leveraging transistor’s analog-digital duality,” in 2022 IEEE/MTT-S International Microwave Symposium - IMS 2022, pp. 418–421, 2022.
- D. J. Shepphard, J. Powell, and S. C. Cripps, “A broadband reconfigurable load modulated balanced amplifier (LMBA),” in IEEE MTT-S Int. Microw. Symp. Dig., pp. 947–949, June 2017.
- Y. Cao and K. Chen, “Hybrid asymmetrical load modulated balanced amplifier with wide bandwidth and three-way-doherty efficiency enhancement,” IEEE Microwave and Wireless Components Letters, vol. 31, no. 6, pp. 721–724, 2021.
- S. C. Cripps, “RF power amplifiers for wireless communications,” IEEE Microw. Mag., vol. 1, pp. 64–64, March 2000.
- J. Pang, Y. Li, M. Li, Y. Zhang, X. Y. Zhou, Z. Dai, and A. Zhu, “Analysis and design of highly efficient wideband RF-input sequential load modulated balanced power amplifier,” IEEE Trans. Microw. Theory Techn., vol. 68, no. 5, pp. 1741–1753, 2020.
- K. Chen and D. Peroulis, “Design of highly efficient broadband Class-E power amplifier using synthesized low-pass matching networks,” IEEE Transactions on Microwave Theory and Techniques, vol. 59, no. 12, pp. 3162–3173, 2011.
- M. Muraguchi, T. Yukitake, and Y. Naito, “Optimum design of 3-dB Branch-Line couplers using microstrip lines,” IEEE Transactions on Microwave Theory and Techniques, vol. 31, no. 8, pp. 674–678, 1983.
- Y. Cao, H. Lyu, and K. Chen, “Load modulated balanced amplifier with reconfigurable phase control for extended dynamic range,” in 2019 IEEE MTT-S International Microwave Symposium (IMS), pp. 1335–1338, 2019.
- Y. Cao and K. Chen, “Dual-octave-bandwidth RF-input Pseudo-Doherty load modulated balanced amplifier with ≥\geq≥ 10-dB power back-off range,” in 2020 IEEE/MTT-S International Microwave Symposium (IMS), pp. 703–706, 2020.
- S. Hu, F. Wang, and H. Wang, “A 28-/37-/39-GHz linear Doherty power amplifier in silicon for 5G applications,” IEEE J. Solid-State Circuits, vol. 54, pp. 1586–1599, June 2019.
- C. Belchior, L. C. Nunes, P. M. Cabral, and J. C. Pedro, “Sequential lmba design technique for improved bandwidth considering the balanced amplifiers off-state impedance,” IEEE Transactions on Microwave Theory and Techniques, vol. 71, no. 8, pp. 3629–3643, 2023.