OP471 Analog Devices, OP471 Datasheet - Page 13

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OP471

Manufacturer Part Number
OP471
Description
High Speed, Low Noise Quad Operational Amplifier
Manufacturer
Analog Devices
Datasheet

Specifications of OP471

Vcc-vee
9V to 36V
Isy Per Amplifier
2.75mA
Packages
LCC,SOIC
-3db Bandwidth
6.5MHz
Slew Rate
8V/µs
Vos
1mV
Ib
25nA
# Opamps Per Pkg
4
Input Noise (nv/rthz)
6.5nV/rtHz

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Low Phase Error Amplifier
The simple amplifier depicted in Figure 18 utilizes monolithic
matched operational amplifiers and a few resistors to substan-
tially reduce phase error compared to conventional amplifier
designs. At a given gain, the frequency range for a specified phase
accuracy is over a decade greater than for a standard single op
amp amplifier.
The low phase error amplifier performs second-order frequency
compensation through the response of op amp A2 in the feed-
back loop of A1. Both op amps must be extremely well matched
in frequency response. At low frequencies, the A1 feedback loop
forces V
= V
K1 + 1. The dc gain is determined by the resistor divider at
the output, V
around A2. Note that similar to a conventional single op amp
amplifier, the dc gain is set by resistor ratios only. Minimum
gain for the low phase error amplifier is 10.
Figure 19 compares the phase error performance of the low
phase error amplifier with a conventional single op amp amplifier
and a cascaded two-stage amplifier. The low phase error amplifier
shows a much lower phase error, particularly for frequencies where
for the single op amp amplifier, but at 0.11 /
phase error amplifier.
For more detailed information on the low phase error amplifier,
see Application Note AN-107.
REV. A
/
2
/(K1 + 1) yielding an overall transfer function of V
T
< 0.1. For example, phase error of –0.1∞ occurs at 0.002 /
2
/(K1 + 1) = V
O
, and is not directly affected by the resistor divider
IN
. The A2 feedback loop forces Vo/(K1 +1)
T
for the low
O
/V
IN
=
T
–13–
V
–1
–2
–3
–4
–5
–6
–7
IN
0.001
0
ASSUME: A1 AND A2 ARE MATCHED.
Figure 18. Low Phase Error Amplifier
Figure 19. Phase Error Comparison
R2
K1
A
(CONVENTIONAL
O
SINGLE OP AMP
0.005
(s) =
FREQUENCY RATIO – 1/ ,
s
DESIGN)
(TWO STAGES)
0.01
LOW-PHASE ERROR
T
1/4
OP471E
A2
1/4
OP471E
A1
CASCADED
AMPLIFIER
0.05
R2
0.1
R1
/
V
O
T
= (K
R2 = R1
V2
R1
K1
1
OP471
+ 1) V
0.5
V
IN
O
1

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