OP281 Analog Devices, OP281 Datasheet

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OP281

Manufacturer Part Number
OP281
Description
Ultralow Power, Rail-to-Rail Output Operational Amplifier (Dual)
Manufacturer
Analog Devices
Datasheet

Specifications of OP281

-3db Bandwidth
105kHz
Slew Rate
28mV/µs
Vos
100µV
Ib
3nA
# Opamps Per Pkg
2
Input Noise (nv/rthz)
75nV/rtHz
Vcc-vee
2.7V to 12V
Isy Per Amplifier
5µA
Packages
SOIC,SOP

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FEATURES
Low supply current: 4 μA/amplifier maximum
Single-supply operation: 2.7 V to 12 V
Wide input voltage range
Rail-to-rail output swing
Low offset voltage: 1.5 mV
No phase reversal
APPLICATIONS
Comparator
Battery-powered instrumentation
Safety monitoring
Remote sensors
Low voltage strain gage amplifiers
GENERAL DESCRIPTION
The OP281 and OP481 are dual and quad ultralow power
single-supply amplifiers featuring rail-to-rail outputs. Each
operates from supplies as low as 2.0 V and is specified at +3 V
and +5 V single supplies as well as ±5 V dual supplies.
Fabricated on Analog Devices’ CBCMOS process, the
OP281/OP481 feature a precision bipolar input and an output
that swings to within millivolts of the supplies, continuing to
sink or source current up to a voltage equal to the supply voltage.
Applications for these amplifiers include safety monitoring,
portable equipment, battery and power supply control, and
signal conditioning and interfacing for transducers in very low
power systems.
The output’s ability to swing rail-to-rail and not increase supply
current when the output is driven to a supply voltage enables
the OP281/OP481 to be used as comparators in very low power
systems. This is enhanced by their fast saturation recovery time.
Propagation delays are 250 μs.
The OP281/OP481 are specified over the extended industrial
temperature range (−40°C to +85°C). The OP281 dual amplifier
is available in 8-lead SOIC surface-mount and TSSOP packages.
The OP481 quad amplifier is available in narrow 14-lead SOIC
and TSSOP packages.
Rev. D
Information furnished by Analog Devices is believed to be accurate and reliable. However, no
responsibility is assumed by Analog Devices for its use, nor for any infringements of patents or other
rights of third parties that may result from its use. Specifications subject to change without notice. No
license is granted by implication or otherwise under any patent or patent rights of Analog Devices.
Trademarks and registered trademarks are the property of their respective owners.
Ultralow Power, Rail-to-Rail Output
One Technology Way, P.O. Box 9106, Norwood, MA 02062-9106, U.S.A.
Tel: 781.329.4700
Fax: 781.461.3113
Operational Amplifiers
OUT A
OUT B
OUT A
OUT A
OUT B
–IN A
+IN A
+IN B
–IN B
OUT A
+IN A
PIN CONFIGURATIONS
–IN A
+IN A
+IN B
–IN A
–IN B
©1996–2008 Analog Devices, Inc. All rights reserved.
–IN A
+IN A
V+
V–
V+
V–
Figure 4. 14-Lead TSSOP
Figure 2. 8-Lead TSSOP
4
5
6
1
2
3
7
1
1
2
3
4
5
6
7
2
3
4
1
2
3
4
Narrow-Body SOIC
Narrow-Body SOIC
Figure 3. 14-Lead
Figure 1. 8-Lead
(Not to Scale)
(Not to Scale)
(Not to Scale)
(Not to Scale)
TOP VIEW
TOP VIEW
TOP VIEW
OP481
OP281
TOP VIEW
(RU Suffix)
OP481
(RU Suffix)
(R Suffix)
OP281
(R Suffix)
OP281/OP481
14
13
12
11
10
9
8
8
7
6
5
14
13
12
11
10
9
8
7
6
5
8
OUT D
–IN D
+IN D
V–
+IN C
–IN C
OUT C
V+
OUT B
–IN B
+IN B
OUT D
–IN D
+IN D
V–
+IN C
–IN C
OUT C
V+
OUT B
–IN B
+IN B
www.analog.com

Related parts for OP281

OP281 Summary of contents

Page 1

... The output’s ability to swing rail-to-rail and not increase supply current when the output is driven to a supply voltage enables the OP281/OP481 to be used as comparators in very low power systems. This is enhanced by their fast saturation recovery time. Propagation delays are 250 μs. ...

Page 2

... OP281/OP481 TABLE OF CONTENTS Features .............................................................................................. 1 Applications ....................................................................................... 1 Pin Configurations ........................................................................... 1 General Description ......................................................................... 1 Revision History ............................................................................... 2 Specifications ..................................................................................... 3 Electrical Specifications ............................................................... 3 Absolute Maximum Ratings ............................................................ 6 Thermal Resistance ...................................................................... 6 ESD Caution .................................................................................. 6 Typical Performance Characteristics ............................................. 7 Applications ..................................................................................... 13 REVISION HISTORY 9/08—Rev Rev. D Changes to Figure 40 ...................................................................... 14 Changes to Low-Side Current Monitor Section ......................... 15 Changes to Figure 42 ...................................................................... 15 10/07— ...

Page 3

... R = 100 kΩ 20 GBP φ p-p 0 kHz Rev Page OP281/OP481 Min Typ Max 1 ≤ +85° ≤ +85°C 2.925 2.96 A ≤ +85° ± ...

Page 4

... OP281/OP481 25°C, unless otherwise noted Table 2. Parameter INPUT CHARACTERISTICS Offset Voltage 1 Input Bias Current Input Offset Current Input Voltage Range Common-Mode Rejection Ratio Large-Signal Voltage Gain Offset Voltage Drift Bias Current Drift Offset Current Drift OUTPUT CHARACTERISTICS ...

Page 5

... SY O –40°C ≤ T ≤ +85° 100 kΩ GBP φ p-p 0 kHz kHz i n Rev Page OP281/OP481 Min Typ Max 0.1 1.5 2 0.1 7 –5 +4 ≤ +85° ≤ +85°C ±4.925 ± ...

Page 6

... OP281/OP481 ABSOLUTE MAXIMUM RATINGS Table 4. Parameter Supply Voltage Input Voltage Differential Input Voltage Output Short-Circuit Duration to GND Storage Temperature Range Operating Temperature Range Junction Temperature Range Lead Temperature Range (Soldering, 60 sec) Stresses above those listed under Absolute Maximum Ratings may cause permanent damage to the device. This is a stress rating only ...

Page 7

... Rev Page OP281/OP481 –40 – TEMPERATURE (°C) Figure 8. Input Bias Current vs. Temperature 1 25° 0.5 1.0 1.5 2.0 2.5 3.0 3 ...

Page 8

... OP281/OP481 10000 25°C A 1000 100 SOURCE SINK LOAD CURRENT (µA) Figure 11. Output Voltage to Supply Rail vs. Load Current 1000 25°C A 100 SOURCE SINK LOAD CURRENT (µA) Figure 12. Output Voltage to Supply Rail vs. Load Current 1000 V = ± ...

Page 9

... Figure 22. Small-Signal Overshoot vs. Load Capacitance Rev Page OP281/OP481 ± + +3V S 10k 100k 1M FREQUENCY (Hz) Figure 20. CMRR vs. Frequency V = ±5V, +5V, +3V, +2. 25° ∞ L 100 1k ...

Page 10

... OP281/OP481 100 1k FREQUENCY (Hz) Figure 23. Maximum Output Swing vs. Frequency 100 1k FREQUENCY (Hz) Figure 24. Maximum Output Swing vs. Frequency 4 3.5 3.0 2.5 2.0 1.5 1.0 0.5 0 –40 – TEMPERATURE (°C) Figure 25. Supply Current/Amplifier vs. Temperature 4 p 25° ∞ L 3.5 3.0 2.5 2.0 1.5 1.0 0.5 10k 100k 3 ...

Page 11

... 500mV 100kΩ 50pF 100 25° Rev Page OP281/OP481 V = 2.75V A2 0. 100kΩ 50pF 25°C A 100µs Figure 31. Large-Signal Transient Response 2. 25°C ...

Page 12

... OP281/OP481 V = ±1.35V ∞ L 100 500mV 500mV 50µs Figure 33. Saturation Recovery Time A2 0V 100 500mV 100µs Figure 34. Saturation Recovery Time 120 V = ±1V p-p 105 2kHz –15 –30 CIRCUIT = A VOL 25°C ...

Page 13

... OUT 0.1V Figure 38. Input and Output Signals with V Rev Page OP281/OP481 3 EE 100kΩ +3V 100kΩ V 100kΩ OUT OP281 + V = 1kHz AT IN 400mV p-p 100kΩ – –0.1V Operating at V < However, the op amp can operate 0.2ms 0V < ...

Page 14

... V stay at the negative rail, in this case ground, as long as the input voltage is less than V OP281 (A2) will stay at ground as long the input voltage is higher than V outputs of both op amps will With no current flowing in either D1 or D2, the base of Q1 will stay at ground, putting the ...

Page 15

... GROUND BATTERY-POWERED TELEPHONE HEADSET AMPLIFIER Figure 45 shows how the OP281 can be used as a two-way amplifier in a telephone headset. One side of the OP281 can be used as an amplifier for the microphone, and the other side can be used to drive the speaker. A typical telephone headset uses a 600 Ω ...

Page 16

... Two 1 MΩ MIC OUT resistors are used to provide the dc offset for single-supply use. The OP281-B amplifier (see Figure 45) can provide gain for the headset speaker. Incoming audio signals are ac-coupled kΩ potentiometer that is used to adjust the volume. Again, two 1 MΩ ...

Page 17

... SEATING 0.51 (0.0201) 0.25 (0.0098) PLANE 0.31 (0.0122) 0.17 (0.0067) COMPLIANT TO JEDEC STANDARDS MS-012-AB Figure 47. 14-Lead Standard Small Outline Package [SOIC_N] Narrow Body (R-14) Dimensions shown in millimeters and (inches) Rev Page OP281/OP481 0.50 (0.0196) 45° 0.25 (0.0099) 1.27 (0.0500) 0.40 (0.0157) 0.50 (0.0197) 45° 0.25 (0.0098) 8° 0° 1.27 (0.0500) 0.40 (0.0157) ...

Page 18

... OP281GRUZ-REEL –40°C to +85°C OP281GS –40°C to +85°C OP281GS-REEL –40°C to +85°C OP281GS-REEL7 –40°C to +85°C 1 OP281GSZ –40°C to +85°C 1 OP281GSZ-REEL –40°C to +85°C 1 OP281GSZ-REEL7 –40°C to +85°C OP481GRU-REEL –40°C to +85°C 1 OP481GRUZ-REEL – ...

Page 19

... NOTES Rev Page OP281/OP481 ...

Page 20

... OP281/OP481 NOTES ©1996–2008 Analog Devices, Inc. All rights reserved. Trademarks and registered trademarks are the property of their respective owners. D00291-0-9/08(D) Rev Page ...

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