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Quad Precision, High
Speed Operational Amplifier
OP467
FEATURES
High slew rate: 170 V/μs
Wide bandwidth: 28 MHz
Fast settling time: <200 ns to 0.01%
Low offset voltage: <500 μV
Unity-gain stable
Low voltage operation: ±5 V to ±15 V
Low supply current: <10 mA
Drives capacitive loads
PIN CONFIGURATIONS
OUT A
1
–IN A
2
+IN A
3
V+
4
+IN B
5
–IN B
6
OUT B
7
+
+
+
+
14
OUT D
13
–IN D
12
+IN D
OP467
11
V–
10
+IN C
9
8
–IN C
OUT C
00302-001
Figure 1. 14-Lead CERDIP (Y Suffix) and 14-Lead PDIP (P Suffix)
OUT A
OUT D
–IN A
NC
1
+IN B
5
–IN B
6
OUT B
7
NC
8
12
+IN C
11
–IN C
OUT C
NC
The OP467 is a quad, high speed, precision operational
amplifier. It offers the performance of a high speed op amp
combined with the advantages of a precision op amp in a single
package. The OP467 is an ideal choice for applications where,
traditionally, more than one op amp was used to achieve this
level of speed and precision.
The internal compensation of the OP467 ensures stable unity-
gain operation, and it can drive large capacitive loads without
oscillation. With a gain bandwidth product of 28 MHz driving a
30 pF load, output slew rate is 170 V/μs, and settling time to
0.01% in less than 200 ns, the OP467 provides excellent
dynamic accuracy in high speed data acquisition systems. The
channel-to-channel separation is typically 60 dB at 10 MHz.
The dc performance of the OP467 includes less than 0.5 mV of
offset, a voltage noise density below 6 nV/√Hz, and a total
supply current under 10 mA. The common-mode rejection
ratio (CMRR) is typically 85 dB. The power supply rejection
ratio (PSRR) is typically 107 dB. PSRR is maintained to better than
40 dB with input frequencies as high as 1 MHz. The low offset and
drift plus high speed and low noise make the OP467 usable in
applications such as high speed detectors and instrumentation.
The OP467 is specified for operation from ±5 V to ±15 V over
the extended industrial temperature range (−40°C to +85°C)
and is available in a 14-lead PDIP, a 14-lead CERDIP, a 16-lead
SOIC, and a 20-terminal LCC.
Contact your local sales office for the MIL-STD-883 data sheet
and availability.
Rev.
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.
9
NC
NC = NO CONNECT
00302-002
NC = NO CONNECT
Figure 2. 16-Lead SOIC (S Suffix)
Figure 3. 20-Terminal LCC (RC Suffix)
OUT B
–IN B
–IN C
GENERAL DESCRIPTION
10
OUT C
9
10 11 12 13
V+
+IN
–IN
OUT
V–
Figure 4. Simplified Schematic
One Technology Way, P.O. Box 9106, Norwood, MA 02062-9106, U.S.A.
Tel: 781.329.4700
www.analog.com
Fax: 781.461.3113 ©
3–20 Analog Devices, Inc. All rights reserved.
00302-004
00302-003
High speed image display drivers
High frequency active filters
Fast instrumentation amplifiers
High speed detectors
Integrators
Photo diode preamps
3
2
20 19
–IN D
APPLICATIONS
+IN A
4
NC
5
V+
6
NC
7
+IN B
8
OUT A
1
–IN A
2
+IN A
3
V+
4
16
OUT D
15
–IN D
14
+IN D
18
17
+IN D
NC
V–
NC
+IN C
OP467
(TOP VIEW)
16
15
14
OP467
13
V–
OP467
TABLE OF CONTENTS
Features .............................................................................................. 1
Applications ....................................................................................... 1
General Description ......................................................................... 1
Pin Configurations ........................................................................... 1
Revision History ............................................................................... 2
Specifications..................................................................................... 3
Electrical Characteristics ............................................................. 3
Wafer Test Limits .......................................................................... 5
Absolute Maximum Ratings............................................................ 6
Thermal Resistance ...................................................................... 6
Dice Characteristics ..................................................................... 6
ESD Caution .................................................................................. 6
Typical Performance Characteristics ............................................. 7
Applications Information .............................................................. 13
Output Short-Circuit Performance .......................................... 13
Unused Amplifiers ..................................................................... 13
PCB Layout Considerations ...................................................... 13
Grounding ................................................................................... 13
Power Supply Considerations ................................................... 13
Signal Considerations ................................................................ 13
Phase Reversal ............................................................................ 14
Saturation Recovery Time ......................................................... 14
High Speed Instrumentation Amplifier .................................. 14
2 MHz Biquad Band-Pass Filter ............................................... 15
Fast I-to-V Converter ................................................................ 16
OP467 SPICE Marco-Model ..................................................... 17
Outline Dimensions ....................................................................... 19
Ordering Guide .......................................................................... 20
REVISION HISTORY
4/10—Rev. H to Rev. I
Deleted Endnote 2 From Table 1 .................................................... 3
8/09—Rev. G to Rev. H
Changes to Table 4 ............................................................................ 6
4/09—Rev. F to Rev. G
Changes to Power Supply Considerations Section..................... 13
5/07—Rev. E to Rev. F
Updated Format .................................................................. Universal
Changes to General Description .................................................... 1
Changes to Table 1 ............................................................................ 3
Changes to Table 2 ............................................................................ 4
Changes to Table 3 ............................................................................ 5
Updated Outline Dimensions ....................................................... 19
Changes to Ordering Guide .......................................................... 20
3/04—Rev. D to Rev. E
Changes to TPC 1 ..............................................................................5
Changes to Ordering Guide .............................................................4
Updated Outline Dimensions ....................................................... 16
4/01—Rev. C to Rev. D
Footnote added to Power Supply.....................................................2
Footnote added to Max Ratings ......................................................4
Edits to Power Supply Considerations Section........................... 11
Rev. I | Page 2 of 20
OP467
SPECIFICATIONS
ELECTRICAL CHARACTERISTICS
@ V
S
= ±15.0 V, T
A
= 25°C, unless otherwise noted.
Table 1.
Parameter
INPUT CHARACTERISTICS
Offset Voltage
Input Bias Current
Input Offset Current
Common-Mode Rejection
Large Signal Voltage Gain
Offset Voltage Drift
Bias Current Drift
Long-Term Offset Voltage Drift
1
OUTPUT CHARACTERISTICS
Output Voltage Swing
POWER SUPPLY
Power Supply Rejection Ratio
Supply Current
Supply Voltage Range
DYNAMIC PERFORMANCE
Gain Bandwidth Product
Slew Rate
Symbol
V
OS
I
B
I
OS
CMR
CMR
A
VO
ΔV
OS
/ΔT
ΔI
B
/ΔT
ΔV
OS
/ΔT
V
O
R
L
= 2 kΩ
R
L
= 2 kΩ, −40°C ≤ T
A
≤ +85°C
±4.5 V ≤ V
S
≤ ±18 V
−40°C ≤ T
A
≤ +85°C
V
O
= 0 V
V
O
= 0 V, −40°C ≤ T
A
≤ +85°C
±13.0
±12.9
96
86
−40°C ≤ T
A
≤ +85°C
V
CM
= 0 V
V
CM
= 0 V, −40°C ≤ T
A
≤ +85°C
V
CM
= 0 V
V
CM
= 0 V, −40°C ≤ T
A
≤ +85°C
V
CM
= ±12 V
V
CM
= ±12 V, −40°C ≤ T
A
≤ +85°C
R
L
= 2 kΩ
R
L
= 2 kΩ, −40°C ≤ T
A
≤ +85°C
Conditions
Min
Typ
0.2
150
150
10
10
90
88
86
3.5
0.2
750
±13.5
±13.12
120
115
8
Max
0.5
1
600
700
100
150
Unit
mV
mV
nA
nA
nA
nA
dB
dB
dB
dB
μV/°C
pA/°C
μV
V
V
dB
dB
mA
mA
V
MHz
V/μs
V/μs
MHz
ns
Degrees
pF
pF
μV p-p
nV/√Hz
pA/√Hz
80
80
83
77.5
PSRR
I
SY
V
S
GBP
SR
±4.5
A
V
= +1, C
L
= 30 pF
V
IN
= 10 V step, R
L
= 2 kΩ, C
L
= 30 pF
A
V
= +1
A
V
= −1
V
IN
= 10 V step
To 0.01%, V
IN
= 10 V step
28
125
170
350
2.7
200
45
2.0
1.0
10
13
±18
Full-Power Bandwidth
Settling Time
Phase Margin
Input Capacitance
Common Mode
Differential
NOISE PERFORMANCE
Voltage Noise
Voltage Noise Density
Current Noise Density
1
BW
ρ
t
S
θ
0
e
N
p-p
e
N
i
N
f = 0.1 Hz to 10 Hz
f = 1 kHz
f = 1 kHz
0.15
6
0.8
Long-term offset voltage drift is guaranteed by 1000 hrs. Life test performed on three independent wafer lots at 125°C, with an LTPD of 1.3.
Rev. I | Page 3 of 20
OP467
@ V
S
= ±5.0 V, T
A
= 25°C, unless otherwise noted.
Table 2.
Parameter
INPUT CHARACTERISTICS
Offset Voltage
Input Bias Current
Input Offset Current
Common-Mode Rejection
Large Signal Voltage Gain
Offset Voltage Drift
Bias Current Drift
OUTPUT CHARACTERISTICS
Output Voltage Swing
POWER SUPPLY
Power Supply Rejection Ratio
Supply Current
DYNAMIC PERFORMANCE
Gain Bandwidth Product
Slew Rate
Symbol
V
OS
I
B
I
OS
CMR
CMR
A
VO
ΔV
OS
/ΔT
ΔI
B
/ΔT
V
O
R
L
= 2 kΩ
R
L
= 2 kΩ, −40°C ≤ T
A
≤ +85°C
±4.5 V ≤ V
S
≤ ±5.5 V
−40°C ≤ T
A
≤ +85°C
V
O
= 0 V
V
O
= 0 V, −40°C ≤ T
A
≤ +85°C
A
V
= +1
V
IN
= 5 V step, R
L
= 2 kΩ, C
L
= 39 pF
A
V
= +1
A
V
= −1
V
IN
= 5 V step
To 0.01%, V
IN
= 5 V step
±3.0
±3.0
92
83
−40°C ≤ T
A
≤ +85°C
V
CM
= 0 V
V
CM
= 0 V, −40°C ≤ T
A
≤ +85°C
V
CM
= 0 V
V
CM
= 0 V, −40°C ≤ T
A
≤ +85°C
V
CM
= ±2.0 V
V
CM
= ±2.0 V, −40°C ≤ T
A
≤ +85°C
R
L
= 2 kΩ
R
L
= 2 kΩ, −40°C ≤ T
A
≤ +85°C
Conditions
Min
Typ
0.3
125
150
20
76
76
80
74
85
80
83
3.5
0.2
±3.5
±3.20
107
105
8
Max
0.5
1
600
700
100
150
Unit
mV
mV
nA
nA
nA
nA
dB
dB
dB
dB
μV/°C
pA/°C
V
V
dB
dB
mA
mA
MHz
V/μs
V/μs
MHz
ns
Degrees
μV p-p
nV/√Hz
pA/√Hz
PSRR
I
SY
10
12
GBP
SR
22
90
90
2.5
280
45
0.15
7
0.8
Full-Power Bandwidth
Settling Time
Phase Margin
NOISE PERFORMANCE
Voltage Noise
Voltage Noise Density
Current Noise Density
BW
ρ
t
S
θ
0
e
N
p-p
e
N
i
N
f = 0.1 Hz to 10 Hz
f = 1 kHz
f = 1 kHz
Rev. | Page 4 of 20