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OP777ARADN/a150avaiPrecision Micropower Single Supply Operational Amplifier
OP777ARMADN/a8avaiPrecision Micropower Single Supply Operational Amplifier


OP777AR ,Precision Micropower Single Supply Operational AmplifierApplications for these amplifiers include both line powered andmicropower operation and rail-to-rai ..
OP777ARM ,Precision Micropower Single Supply Operational AmplifierCHARACTERISTICSOutput Voltage High V I = 1 mA, –40°C ≤ T ≤ +85°C 4.88 VOH L A Output Voltage Low V ..
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OP77EP ,NEXT GENERATION OP07, ULTRALOW OFFSET VOLTAGE OPERATIONAL AMPLIFIERFEATURES . Outstanding Ga Linearity . Ultra High Gain ........................................ 50 ..
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OP777AR-OP777ARM
Precision Micropower Single Supply Operational Amplifier
REV.0
Precision Micropower
Single Supply
Operational Amplifier
FUNCTIONAL BLOCK DIAGRAMS
8-Lead MSOP
(RM Suffix)
8-Lead SOIC
(R Suffix)
FEATURES
Low Offset Voltage: 100 �V Max
Low Input Bias Current: 10 nA Max
Single-Supply Operation: 2.7 V to 30 V
Dual-Supply Operation: �1.35 V to �15 V
Low Supply Current: 270 �A/Amp
Unity Gain Stable
No Phase Reversal
APPLICATIONS
Precision Current Measurement
Line or Battery-Powered Instrumentation
Remote Sensors
Precision Filters
GENERAL DESCRIPTION

The OP777 is a precision single supply amplifier featuring
micropower operation and rail-to-rail output ranges. This ampli-
fier provides improved performance over the industry-standard
OP07 with ±15 V supplies and offers the further advantage of
true single supply operation down to 2.7 V, and smaller package
footprint than any other high-voltage precision bipolar amplifier.
Outputs are stable with capacitive loads of over 1000 pF. Supply
current is less than 300 µA per amplifier at 5 V. 500 Ω series resis-
tors protect the inputs, allowing input signal levels to exceed either
power supply rail by up to 3 V without causing phase reversal of the
output signal or causing damage to the amplifier. The proprietary
fabrication process yields a very low-voltage noise corner frequency
under 10 Hz, greatly improving the low-frequency noise perfor-
mance of the OP07 and similar amplifiers. The specially fabricated
input PNP transistors operate with very low input bias currents while
allowing operation with large differential voltages, eliminating a
common limitation of many precision amplifiers and enabling
application of the OP777 in precision comparator and rectifier
circuits. This large differential voltage capability also further reduces
the need for external protection devices such as clamping diodes.
Applications for these amplifiers include both line powered and
portable instrumentation, remote sensor signal conditioning, and
precision filters.
The OP777 is specified over the extended industrial (–40°C to
+85°C) temperature range and is available in 8-lead MSOP and
8-lead SOIC packages. The OP777 uses a standard operational
amplifier pinout, allowing for easy drop-in replacement of lower
performance amplifiers in most circuits. Surface mount devices
in MSOP packages are available in tape and reel only.
OP777–SPECIFICATIONS
ELECTRICAL CHARACTERISTICS

NOISE PERFORMANCE
Specifications subject to change without notice.
(VS = 5.0 V, VCM = 2.5 V, TA = 25�C unless otherwise noted)
OP777
ELECTRICAL CHARACTERISTICS

NOISE PERFORMANCE
Specifications subject to change without notice.
(VS = �15.0 V, VCM = 0 V, TA = 25�C unless otherwise noted)
OP777
ABSOLUTE MAXIMUM RATINGS*

Supply Voltage . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . .36 V
Input Voltage . . . . . . . . . . . . . . . . . . . . .VS– – 3 V to VS+ + 3 V
Differential Input Voltage . . . . . . . . . . . . . .± Supply Voltage
Output Short-Circuit Duration to GND . . . . . . . . .Indefinite
Storage Temperature Range
R, RM Packages . . . . . . . . . . . . . . . . . . . .–65°C to +150°C
Operating Temperature Range
OP777 . . . . . . . . . . . . . . . . . . . . . . . . . . . .–40°C to +85°C
Junction Temperature Range
R, RM Packages . . . . . . . . . . . . . . . . . . . .–65°C to +150°C
Lead Temperature Range (Soldering, 60 sec) . . . . . . . .300°C
ESD (HBM) . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . .2 kV
*Stresses above those listed under Absolute Maximum Ratings may cause perma-
nent damage to the device. This is a stress rating only; functional operation of the
device at these or any other conditions above those listed in the operational sections
of this specification is not implied. Exposure to absolute maximum rating condi-
tions for extended periods may affect device reliability.
NOTEθJA is specified for worst-case conditions, i.e., θJA is specified for device soldered
in circuit board for surface-mount packages.
CAUTION

ESD (electrostatic discharge) sensitive device. Electrostatic charges as high as 4000V readily
accumulate on the human body and test equipment and can discharge without detection. Although
the OP777 features proprietary ESD protection circuitry, permanent damage may occur on devices
subjected to high-energy electrostatic discharges. Therefore, proper ESD precautions are recom-
mended to avoid performance degradation or loss of functionality.
ORDERING GUIDE
Figure 1.Input Offset Voltage
Distribution
INPUT BIAS CURRENT – nA
NUMBER OF AMPLIFIERS84567

Figure 4.Input Bias Current
Distribution
TEMPERATURE –�C
INPUT BIAS CURRENT
nA

�30�60�40140�20020406080100120
�15
�25
�10
�20
Figure 7.Input Bias Current vs.
Temperature
Figure 2.Input Offset Voltage
Distribution
LOAD CURRENT – mA

OUTPUT VOLTAGE
mV
10k
0.1

Figure 5.Output Voltage to Supply
Rail vs. Load Current
TEMPERATURE –
�C
SUPPLY CURRENT
500

�500�60�40140�20020406080100120
100

�200
�400
�100
�300
400

Figure 8.Supply Current vs.
Temperature
INPUT OFFSET DRIFT – �V/�C
NUMBER OF AMPLIFIERS01.20.20.40.60.81.0

Figure 3.Input Offset Voltage Drift
Distribution
Figure 6.Output Voltage to Supply
Rail vs. Load Current
Figure 9.Supply Current vs.
Supply Voltage
OP777
Figure 10.Open Loop Gain and
Phase Shift vs. Frequency
FREQUENCY –Hz10k100M100k1M10M
CLOSED-LOOP GAIN
dB

�40
�10
�20
�30
Figure 13.Closed Loop Gain vs.
Frequency
Figure 16.Large Signal Transient
Response
Figure 11.Open Loop Gain and
Phase Shift vs. Frequency
Figure 14.Output Impedance vs.
Frequency
Figure 17.Large Signal Transient
Response
CLOSED-LOOP GAIN
dB

�40
�10
�20
�30
FREQUENCY –Hz10k100M100k1M10M

Figure 12.Closed Loop Gain vs.
Frequency
Figure 15.Output Impedance vs.
Frequency
Figure 18.Small Signal Transient
Response
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