Title :
A Closed-Form Design Technique for Ultra-Wideband Doherty Power Amplifiers
Author :
Giofre, R. ; Piazzon, L. ; Colantonio, P. ; Giannini, F.
Author_Institution :
Electron. Eng. Dept., Univ. of Roma Tor Vergata, Rome, Italy
Abstract :
This paper presents an innovative architecture to drastically enlarge the bandwidth of the Doherty power amplifier (DPA). The proposed topology, based on novel input/output splitting/combining networks, allows to overcome the typical bandwidth limiting factors of the conventional DPA. A complete and rigorous theoretical investigation of the developed architecture is presented leading to a closed-form formulation suitable for a direct synthesis of ultra-wideband DPAs. The theoretical formulation is validated through the design, realization, and test of a hybrid prototype based on commercial GaN HEMT device showing a fractional bandwidth larger than 83%. From 1.05 to 2.55 GHz, experimental results with continuous-wave signals have shown efficiency levels within 83%-45% and within 58%-35% at about 42- and 36-dBm output power, respectively. The DPA has also been tested and digitally predistorted by using a 5-MHz Third Generation Partnership Project (3GPP) signal. In particular, to evaluate the ultra-wideband and the multi-mode capabilities of the prototype, f1 = 1.2 GHz, f2 = 1.8 GHz, and f3 = 2.5 GHz have been selected as carrier frequencies for the 3GPP signal. Under these conditions and at 36-dBm average output power, the DPA shows 52%, 35%, and 52% efficiency and an adjacent channel power ratio always lower than -43 dBc.
Keywords :
III-V semiconductors; UHF field effect transistors; UHF power amplifiers; gallium compounds; high electron mobility transistors; wide band gap semiconductors; wideband amplifiers; 3GPP signal; DPA; GaN; HEMT device; adjacent channel power ratio; bandwidth limiting factor; closed-form design technique; digital predistortion; efficiency 58 percent to 35 percent; efficiency 83 percent to 45 percent; frequency 1.05 GHz to 2.55 GHz; frequency 5 MHz; input-output splitting-combining network; third generation partnership project signal; ultrawideband Doherty power amplifier; Bandwidth; Equations; Impedance; Loading; Power generation; Standards; Ultra wideband technology; Broadband; Doherty; GaN; Third Generation Partnership Project (3GPP); combiner; efficiency; power amplifier (PA); splitter; wideband;
Journal_Title :
Microwave Theory and Techniques, IEEE Transactions on
DOI :
10.1109/TMTT.2014.2363851