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ADA4091-2
Rev. A | Page 14 of 16
THEORY OF OPERATION
The ADA4091-2 is a single-supply, micropower amplifier
featuring rail-to-rail inputs and outputs. To achieve wide input
and output ranges, this amplifier employs unique input and
output stages.
INPUT STAGE
In Figure 44, the input stage comprises two differential pairs, a
PNP pair (PNP input stage) and an NPN pair (NPN input stage).
These input stages do not work in parallel. Instead, only one
stage is on for any given input common-mode signal level. The
PNP stage (Transistor Q1 and Transistor Q2) is required to
ensure that the amplifier remains in the linear region when the
input voltage approaches and reaches the negative rail. Alterna-
tively, the NPN stage (Transistor Q5 and Transistor Q6) is needed
for input voltages up to and including the positive rail.
For the majority of the input common-mode range, the PNP
stage is active, as shown in Figure 4, Figure 16, and Figure 24.
Notice that the bias current switches direction at approximately
1.5 V below the positive rail. At voltages below this level, the
bias current flows out of the ADA4091-2, from the PNP input
stage. Above this voltage, however, the bias current enters the
device, due to the NPN stage. The actual mechanism within
the amplifier for switching between the input stages comprises
Transistor Q3, Transistor Q4, and Transistor Q7. As the input
common-mode voltage increases, the emitters of Q1 and Q2
follow that voltage plus a diode drop. Eventually, the emitters of
Q1 and Q2 are high enough to turn on Q3, which diverts the
tail current away from the PNP input stage, turning it off. The
tail current of the PNP pair is diverting to the Q4/Q7 current
mirror to activate the NPN input stage.
A common practice in bipolar amplifiers to protect the input
transistors from large differential voltages is to include series
resistors and differential diodes. See Figure 45 for the full input
protection circuitry. These diodes turn on whenever the diffe-
rential voltage exceeds approximately 0.6 V. In this condition,
current flows between the input pins, limited only by the two
5 kΩ resistors. Evaluate each application carefully to make sure
that the increase in current does not affect performance.
OUTPUT STAGE
The output stage in the ADA4091-2 device uses a PNP and
an NPN transistor, as do most output stages. However, Q32
and Q33, the output transistors, connect with their collectors
to the output pin to achieve the rail-to-rail output swing.
As the output voltage approaches either the positive or negative
rail, these transistors begin to saturate. Thus, the final limit
on output voltage is the saturation voltage of these transistors,
which is about 50 mV. The output stage has inherent gain arising
from the transistor output impedance, as well as any external load
impedance; consequently, the open-loop gain of the op amp is
dependent on the load resistance and decreases when the ouput
voltage is close to either rail.
07671-024
Q1
Q3
–IN
Q5 Q6
Q11
Q10Q8
Q7
Q4
Q13 Q15
Q14Q12
Q9
Q16 Q17
Q18 Q19
Q32
Q33
+IN Q2
Figure 44. Simplified Schematic Without Input Protection (see Figure 45)