ALD1703PAL

ALD1702A/ALD1702B Advanced Linear Devices 4 of 9
ALD1702/ALD1703
TYPICAL PERFORMANCE CHARACTERISTICS
INPUT BIAS CURRENT AS A FUNCTION
OF AMBIENT TEMPERATURE
AMBIENT TEMPERATURE
(
°C
)
1000
100
10
0.1
1.0
INPUT BIAS CURRENT (pA)
100-25 0 75 1255025-50
V
S
= ± 2.5V
10000
Design & Operating Notes:
1. The ALD1702A/ALD1702B/ALD1702/ALD1703 CMOS operational
amplifier uses a 3 gain stage architecture and an improved
frequency compensation scheme to achieve large voltage gain,
high output driving capability, and better frequency stability. In a
conventional CMOS operational amplifier design, compensation
is achieved with a pole splitting capacitor together with a nulling
resistor. This method is, however, very bias dependent and thus
cannot accommodate the large range of supply voltage operation
as is required from a stand alone CMOS operational amplifier.
The ALD1702A/ALD1702B/ALD1702/ALD1703 is internally
compensated for unity gain stability using a novel scheme that
does not use a nulling resistor. This scheme produces a clean
single pole roll off in the gain characteristics while providing for
more than 70 degrees of phase margin at the unity gain frequency.
A unity gain buffer using the ALD1702A/ALD1702B/ALD1702/
ALD1703 will typically drive 400pF of external load capacitance
without stability problems. In the inverting unity gain configuration,
it can drive up to 800pF of load capacitance. Compared to other
CMOS operational amplifiers, the ALD1702A/ALD1702B/ALD1702/
ALD1703 has shown itself to be more resistant to parasitic
oscillations.
2. The ALD1702A/ALD1702B/ALD1702/ALD1703 has complementary
p-channel and n-channel input differential stages connected in parallel
to accomplish rail to rail input common mode voltage range. This
means that with the ranges of common mode input voltage close to
the power supplies, one of the two differential stages is switched off
internally. To maintain compatibility with other operational amplifiers,
this switching point has been selected to be about 1.5V above the
negative supply voltage. Since offset voltage trimming on the
ALD1702A/ALD1702B/ALD1702/ALD1703 is made when the input
voltage is symmetrical to the supply voltages, this internal switching
does not affect a large variety of applications such as an inverting
amplifier or non-inverting amplifier with a gain larger than 2.5 (5V
operation), where the common mode voltage does not make excursions
below this switching point. The user should however, be aware that
this switching does take place if the operational amplifier is connected
as a unity gain buffer and should make provision in his design to allow
for input offset voltage variations.
3. The input bias and offset currents are essentially input protection diode
reverse bias leakage currents, and are typically less than 1pA at room
temperature. This low input bias current assures that the analog signal
from the source will not be distorted by input bias currents. Normally,
this extremely high input impedance of greater than 10
12
would not
be a problem as the source impedance would limit the node impedance.
However, for applications where source impedance is very high, it may
be necessary to limit noise and hum pickup through proper shielding.
4. The output stage consists of class AB complementary output drivers,
capable of driving a low resistance load. The output voltage swing is
limited by the drain to source on-resistance of the output transistors
as determined by the bias circuitry, and the value of the load resistor.
When connected in the voltage follower configuration, the oscillation
resistant feature, combined with the rail to rail input and output feature,
makes an effective analog signal buffer for medium to high source
impedance sensors, transducers, and other circuit networks.
5. The ALD1702A/ALD1702B/ALD1702/ALD1703 operational amplifier
has been designed to provide full static discharge protection. Internally,
the design has been carefully implemented to minimize latch up.
However, care must be exercised when handling the device to avoid
strong static fields that may degrade a diode junction, causing increased
input leakage currents. In using the operational amplifier, the user is
advised to power up the circuit before, or simultaneously with, any
input voltages applied and to limit input voltages to not exceed 0.3V of
the power supply voltage levels.
COMMON MODE INPUT VOLTAGE RANGE
AS A FUNCTION OF SUPPLY VOLTAGE
SUPPLY VOLTAGE (V)
COMMON MODE INPUT
VOLTAGE RANGE (V)
±7
±6
±5
±4
±3
±2
±1
0
0 ±1 ±2 ±3 ±4 ±5 ±6 ±7
T
A
= 25°C
SUPPLY CURRENT AS A FUNCTION
OF SUPPLY VOLTAGE
SUPPLY VOLTAGE (V)
±5
±4
±2
±3
0
±1
SUPPLY CURRENT (mA)
0 ±1 ±2 ±3 ±4 ±5 ±6
-25°C
+25°C
+80°C
+125°C
INPUTS GROUNDED
OUTPUT UNLOADED
T
A
= -55ºC
OPEN LOOP VOLTAGE GAIN AS A FUNCTION
OF SUPPLY VOLTAGE AND TEMPERATURE
SUPPLY VOLTAGE (V)
1000
100
10
1
OPEN LOOP VOLTAGE
GAIN (V/mV)
0 ±2 ±4 ±6
R
L
= 10K
R
L
= 5K
}
-55°C
}
+25°C
}
+125°C
±8
ALD1702A/ALD1702B Advanced Linear Devices 5 of 9
ALD1702/ALD1703
TYPICAL PERFORMANCE CHARACTERISTICS (cont'd)
INPUT OFFSET VOLTAGE AS A FUNCTION
OF AMBIENT TEMPERATURE
REPRESENTATIVE UNITS
AMBIENT TEMPERATURE (°C)
INPUT OFFSET VOLTAGE (mV)
-50 -25 0 +25 +50 +75 +100 +125
+4
+5
+3
+1
+2
0
-2
-1
-4
-3
-5
V
S
= ±2.5V
INPUT OFFSET VOLTAGE AS A FUNCTION
OF COMMON MODE INPUT VOLTAGE
COMMON MODE INPUT VOLTAGE (V)
-2 -1 0 +1 +2 +3
15
10
5
0
-5
-10
-15
INPUT OFFSET VOLTAGE (mV)
V
S
= ±2.5V
T
A
= 25°C
OPEN LOOP VOLTAGE GAIN AS A
FUNCTION OF LOAD RESISTANCE
LOAD RESISTANCE ()
1K
10K 1000K100K
1000
100
10
1
OPEN LOOP VOLTAGE
GAIN (V/mV)
V
S
= ±2.5V
T
A
= 25°C
LARGE - SIGNAL TRANSIENT
RESPONSE
5V/div
1V/div
2µs/div
V
S
= ±2.5V
T
A
= 25°C
R
L
= 10K
C
L
= 50pF
SMALL - SIGNAL TRANSIENT
RESPONSE
100mV/div
20mV/div
V
S
= ±2.5V
T
A
= 25°C
R
L
= 10K
C
L
= 50pF
2µs/div
OPEN LOOP VOLTAGE GAIN AS
A FUNCTION OF FREQUENCY
FREQUENCY (Hz)
1 10 100 1K 10K 1M 10M100K
120
100
80
60
40
20
0
-20
OPEN LOOP VOLTAGE
GAIN (dB)
V
S
= ±2.5V
T
A
= 25°C
90
0
45
180
135
PHASE SHIFT IN DEGREES
VOLTAGE NOISE DENSITY AS A
FUNCTION OF FREQUENCY
FREQUENCY (Hz)
10 100 1K 10K 100K
150
125
100
75
50
25
0
1000
K
VOLTAGE NOISE DENSITY
(nV/ Hz)
V
S
= ±2.5V
T
A
= 25°C
R
L
= 10K
OUTPUT VOLTAGE SWING AS A
FUNCTION OF SUPPLY VOLTAGE
SUPPLY VOLTAGE (V)
OUTPUT VOLTAGE SWING (V)
±3
0 ±1 ±2 ±3
±4
±5 ±6 ±7
R
L
= 2K
±6
±5
±4
±2
±7
-55°C T
A
125°C
R
L
= 10K
ALD1702A/ALD1702B Advanced Linear Devices 6 of 9
ALD1702/ALD1703
TYPICAL APPLICATIONS
RAIL-TO-RAIL VOLTAGE FOLLOWER/BUFFER
-
+
OUTPUT
50K
0.1µF
+5V
10M
+5V
V
IN
WIEN BRIDGE OSCILLATOR (RAIL-TO-RAIL)
SINE WAVE GENERATOR
10K
-
+
OUTPUT
10K
10K
+2.5V
-2.5V
.01µF
1
2πR
C
f = ~ 1.6KHz
C = .01µF
R = 10K
* See Rail to Rail Waveform
~
-
+
OUTPUT
V
IN
5V
C
L
R
L
=10K
0.1µF
~
Z
IN
= 10
12
400pF
* See rail to rail waveform
0 V
IN
5V
Performance waveforms.
Upper trace is the output of a
Wien Bridge Oscillator. Lower
trace is the output of Rail-to-rail
voltage follower.
0V
+5V
OUTPUT
0V
+5V
INPUT
RAIL-TO-RAIL WAVEFORM
PHOTO DETECTOR CURRENT TO
VOLTAGE CONVERTER
+
-
+2.5V
-2.5V
R
F
= 5M
R
L
= 10K
V
OUT
= I x R
F
I
PHOTODIODE
LOW OFFSET SUMMING AMPLIFIER
OUTPUT
INPUT 1
INPUT 2
-
+
+2.5V
.01µF
.01µF
- 2.5V
GAIN = 5
C
L
= 4000pF
* Circuit Drives Large Load
Capacitance 4000pF
10K
10K
50K
RAIL-TO-RAIL VOLTAGE COMPARATOR

ALD1703PAL

Mfr. #:
Manufacturer:
Advanced Linear Devices
Description:
Precision Amplifiers 10mV CMOS
Lifecycle:
New from this manufacturer.
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