DocumentCode :
2219549
Title :
Study on load transformation networks for differential common drain class-B RF power amplifier
Author :
Khan, Muhammad Abdullah ; Kalim, Danish ; Negra, Renato
Author_Institution :
UMIC Res. Center, RWTH Aachen Univ., Aachen, Germany
fYear :
2011
fDate :
27-28 Sept. 2011
Firstpage :
1
Lastpage :
4
Abstract :
Common drain class-B PAs have the potential of providing high linearity and efficiency. This work analyses the performance of differential common drain class-B power amplifiers (PAs) in terms of linearity, efficiency and time-domain waveforms depending on the load transformation network (LTN) used. Four different LTNs, which provide the required impedance conditions for class-B operation are analysed and the circuit performance of common drain PAs is verified and compared in simulations. The transformer based LTN shows maximum linearity due to the high degree of symmetry. Third-order intermodulation distortion, IMD3 at 3 dB output power back-off from 1 dB compression point, P1dB is 36 dBc while second harmonic rejection is 103 dBc at an input power of 20 dBm. Peak power added efficiency, PAE of 40.6 % was achieved with this configuration. An equivalent off-chip load network achieves peak PAE of 30 % with IMD3 rejection of 31 dBc at 3 dB back-off from P1dB and second harmonic rejection of 24.7 dBc for an input power of 20 dBm. A compromise between area and integration complexity can be obtained with the other two designs analysed. The results confirm that differential common drain class-B PAs have the potential of providing good linearity also for modern digitally modulated signals.
Keywords :
differential amplifiers; power amplifiers; radiofrequency amplifiers; time-domain analysis; area complexity; circuit performance; differential common drain class-B RF power amplifier; efficiency 30 percent; efficiency 40.6 percent; efficiency waveform; impedance conditions; integration complexity; linearity waveform; maximum linearity; modern digitally modulated signals; peak power added efficiency; second harmonic rejection; third-order intermodulation distortion; time-domain waveform; transformer based load transformation network; CMOS integrated circuits; Gain; Harmonic analysis; Linearity; Power generation; Radio frequency; Time domain analysis;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Semiconductor Conference Dresden (SCD), 2011
Conference_Location :
Dresden
Print_ISBN :
978-1-4577-0431-4
Type :
conf
DOI :
10.1109/SCD.2011.6068763
Filename :
6068763
Link To Document :
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