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Transcript
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Slew Rate
We know that the output voltage of an amplifier circuit is
limited, i.e.:
L  vout (t )  L
During any period of time when the output tries to exceed
these limits, the output will saturate, and the signal will be
distorted! E.G.:
vin (t)
Lin
t
Lin
vout (t)
L
t
L
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But, this is not the only way in which the output signal is limited,
nor is saturation the only way it can be distorted!
A very important op-amp parameter is the slew rate
(S.R.). Whereas L- and L+ set limits on the values of
output signal vo(t), the slew rate sets a limit on its
time derivative !!!! I.E.:
S.R. 
d vout (t )
dt
 S.R.
In other words, the output signal can only change so fast! Any
attempt to exceed this fundamental op-amp limit will result in
slew-rate limiting.
So, in addition to saturation, we find that we have the following
output signal condition:

 Avo vin (t )


vout (t )  

 S .R . t  C

if
if
d Avo vin (t )
 S .R .
dt
d Avo vin (t )
 S .R .
dt
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For example, say we build a non-inverting amplifier with midband gain Avo  2 .
This amplifier was constructed using an op-amp with a slew rate
equal to 4V/sec.
Q:
If we input the following signal vin (t ) , what will we see at
the output of this amplifier?
vin (t )
+2
tsec)
4
8
12
-2
A: Ideally, the output would look exactly like the input, only
multiplied by Avo  2 :
vout (t )  2 vin (t )
(ideal)
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vout (t )
+4
tsec)
4
8
12
-4
Note that the time derivative of this output is zero at almost
every time t :
d vout (t )
0
dt
for almost all time t
The exceptions are at times t =4, t =8, and t =12 sec, where we
find that the time derivative is infinite!
d vout (t )

dt
and
at times t  4 and t  12
d vout (t )
 
dt
This is a problem!
at time t  8
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d vout (t )
   4V/ sec
dt
5/6
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Thus, the output signal exceeds the slew rate of the op-amp—
or at least, it tries too!
The reality is that since the op-amp output cannot change at a
rate greater than  4V/sec, the output signal will be distorted!
v o (t )
ideal
slew-rate limited
+4
tsec)
4
8
12
-4
Note the derivative of the actual output signal is limited to a
maximum value ( 4V/μsec ) by the op-amp slew rate.