MAX4130–MAX4134
Single/Dual/Quad, Wide-Bandwidth, Low-Power,
Single-Supply, Rail-to-Rail I/O Op Amps
10
Maxim Integrated
Applications Information
Rail-to-Rail Input Stage
Devices in the MAX4130–MAX4134 family of high-
speed amplifiers have rail-to-rail input and output
stages designed for low-voltage, single-supply opera-
tion. The input stage consists of separate NPN and
PNP differential stages that combine to provide an
input common-mode range that extends 0.2V beyond
the supply rails. The PNP stage is active for input volt-
ages close to the negative rail, and the NPN stage is
active for input voltages near the positive rail. The input
offset voltage is typically below 200µV. The switchover
transition region, which occurs near V
CC
/ 2, has been
extended to minimize the slight degradation in com-
mon-mode rejection ratio caused by the mismatch of
the input pairs. Their low offset voltage, high band-
width, and rail-to-rail common-mode range make these
op amps excellent choices for precision, low-voltage
data-acquisition systems.
Since the input stage switches between the NPN and
PNP pairs, the input bias current changes polarity as
the input voltage passes through the transition region.
Reduce the offset error caused by input bias currents
flowing through external source impedances by match-
ing the effective impedance seen by each input
(Figures 1a, 1b). High source impedances, together
with input capacitance, can create a parasitic pole that
produces an underdamped signal response. Reducing
the input impedance or placing a small (2pF to 10pF)
capacitor across the feedback resistor improves
response.
The MAX4130–MAX4134s’ inputs are protected from
large differential input voltages by 1kΩ series resistors
and back-to-back triple diodes across the inputs
(Figure 2). For differential input voltages less than 1.8V,
input resistance is typically 500kΩ. For differential input
voltages greater than 1.8V, input resistance is approxi-
mately 2kΩ. The input bias current is given by the fol-
lowing equation:
I =
V - 1.8V
2k
BIAS
DIFF
Ω
1kΩ
1kΩ
Figure 2. Input Protection Circuit
MAX4130–MAX4134
Single/Dual/Quad, Wide-Bandwidth, Low-Power,
Single-Supply, Rail-to-Rail I/O Op Amps
11
Maxim Integrated
Rail-to-Rail Output Stage
The minimum output voltage is within millivolts of
ground for single-supply operation where the load is
referenced to ground (V
EE
). Figure 3 shows the input
voltage range and output voltage swing of a MAX4131
connected as a voltage follower. With a +3V supply
and the load tied to ground, the output swings from
0.00V to 2.90V. The maximum output voltage swing
depends on the load, but will be within 150mV of a +3V
supply, even with the maximum load (500Ω to ground).
Driving a capacitive load can cause instability in most
high-speed op amps, especially those with low quies-
cent current. The MAX4130–MAX4134 have a high tol-
erance for capacitive loads. They are stable with
capacitive loads up to 160pF. Figure 4 gives the stable
operating region for capacitive loads. Figures 5 and 6
show the response with capacitive loads and the
results of adding an isolation resistor in series with the
output (Figure 7). The resistor improves the circuit’s
phase margin by isolating the load capacitor from the
op amp’s output.
IN
TIME (1μs/div)
VOLTAGE (1V/div)
OUT
V
CC
= 3V, R
L
= 10kΩ to V
EE
Figure 3. Rail-to-Rail Input/Output Voltage Range
500
0
50
100
150
200
300
350
400
450
0.1 1 10010
LOAD RESISTANCE (kΩ)
LOAD CAPACITANCE (pF)
250
UNSTABLE
OPERATING
REGION
STABLE
OPERATING
REGION
R
L
TO V
EE
V
OUT
= V
CC
/2
Figure 4. Capacitive-Load Stability
IN
TIME (200ns/div)
VOLTAGE (50mV/div)
OUT
V
CC
= 5V
R
L
= 10kΩ
C
L
= 130pF
Figure 5. MAX4131 Small-Signal Transient Response with
Capacitive Load
Figure 6. MAX4131 Transient Response to Capacitive Load
with Isolation Resistor
IN
TIME (500ns/div)
VOLTAGE (50mV/div)
OUT
V
CC
= 5V
C
L
= 1000pF
R
S
= 39Ω
MAX4130–MAX4134
Single/Dual/Quad, Wide-Bandwidth, Low-Power,
Single-Supply, Rail-to-Rail I/O Op Amps
12
Maxim Integrated
Power-Up and Shutdown Mode
The MAX4130–MAX4134 amplifiers typically settle with-
in 1µs after power-up. Figures 9 and 10 show the out-
put voltage and supply current on power-up, using the
test circuit of Figure 8.
The MAX4131 and MAX4133 have a shutdown option.
When the shutdown pin (SHDN) is pulled low, the sup-
ply current drops below 25µA per amplifier and the
amplifiers are disabled with the outputs in a high-
impedance state. Pulling SHDN high or leaving it float-
ing enables the amplifier. In the dual-amplifier
MAX4133, the shutdown functions operate indepen-
dently. Figures 11 and 12 show the output voltage and
supply current responses of the MAX4131 to a shut-
down pulse, using the test circuit of Figure 8.
R
S
C
L
Figure 7. Capacitive-Load Driving Circuit
SHDN
OUT
0V TO 2.7V
STEP FOR
SHUTDOWN
TEST
0V TO 2.7V STEP
FOR POWER-UP
TEST; 2.7V FOR
SHUTDOWN
ENABLE TEST
SUPPLY-CURRENT
MONITORING POINT
V
CC
*0.1μF
10Ω
2kΩ
*FOR SHUTDOWN TEST ONLY.
10kΩ
2kΩ
Figure 8. Power-Up/Shutdown Test Circuit
V
CC
TIME (5μs/div)
VOLTAGE (1V/div)
OUT
Figure 9. Power-Up Output Voltage
V
CC
(1V/div)
TIME (5μs/div)
I
EE
(500μA/div)
Figure 10. Power-Up Supply Current

MAX4132EUA

Mfr. #:
Manufacturer:
Description:
Operational Amplifiers - Op Amps Dual Wide-Bandwdth Single-Supply R-R
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