// PA Parameters
°
0° (C)120° (C)180° (B)270° (AB)360° (A)
V
A
A
W
Ω
// Conduction Angle → Class
2α = 360° → Class A (always on, IQ = Ipk/2)
180° < 2α < 360° → Class AB (partial bias)
2α = 180° → Class B (zero bias, IQ = 0)
0° < 2α < 180° → Class C (negative bias)
2α = 0° → Class C limit (no output unless resonant)

Drain efficiency: ηd = Pout / PDC
PAE: = (Pout − Pin) / PDC
PDC = VDD × IDC where IDC = Ipk(sinα − αcosα) / (π(1−cosα))
Key trade-off: As conduction angle decreases from 360° to 0°, efficiency rises but output power and linearity fall. Class A is most linear; Class C is most efficient but highly nonlinear. Class D/E/F use switching to approach 100% theoretical efficiency.
// Calculated Results
Output Power
Output power Pout
Pout (dBm)
Peak output voltage Vout,pk
DC Power & Efficiency
DC supply current IDC
DC input power PDC
Drain efficiency ηd
Power added efficiency PAE
Power dissipated as heat
Linearity
Fundamental component I1/Ipk
2nd harmonic I2/Ipk
3rd harmonic I3/Ipk
Theoretical gain compression
// Efficiency vs Conduction Angle
Drain efficiency Pout (normalised)
// All Classes Comparison
Class ηd (theory) Pout (norm) Linearity Application
A360°50%1.00ExcellentLinear PA, small-signal
AB180–360°50–78%0.5–1.0GoodRFPA, base station
B180°78.5%0.5FairPush-pull PA
C<180°78–100%<0.5PoorFM TX, narrowband
DSwitch~100%HighNonlinearAudio, DC-DC
ESwitch~100%HighNonlinearHF/VHF PA, ISM
FSwitch+harm~88%HighNonlinearMicrowave PA, RFPA

Power Amplifier Classes — Design Guide

Power amplifier efficiency is one of the most critical parameters in wireless system design. In a base station PA consuming kilowatts, even a 1% improvement in efficiency saves significant operating cost and cooling. In a handset, PA efficiency directly determines battery life.

Class A — Maximum Linearity

A Class A amplifier biases the transistor at the midpoint of its load line so it conducts for the full 360° of the input cycle. Maximum theoretical drain efficiency is 50% — the transistor always draws current even with no RF input. Class A is used where linearity is paramount: LNA stages, driver amplifiers, and precision measurement equipment.

Class B and AB — The Practical Sweet Spot

Class B biases at pinch-off (zero quiescent current), giving 78.5% theoretical efficiency but with crossover distortion. Class AB biases slightly above pinch-off, trading some efficiency for improved linearity. Most modern RFPA designs use Class AB with digital pre-distortion (DPD) to correct the nonlinearity — allowing base station PAs to operate at 40–50% efficiency with acceptable EVM.

Class D, E, F — Switching PAs

Switching-mode PAs treat the transistor as a switch, theoretically eliminating the I×V overlap that causes dissipation in linear classes. Class E uses a single transistor with a specific reactive load network; Class F adds harmonic traps to shape the drain waveform into a square wave. Practical efficiencies of 70–85% are achievable at RF frequencies.