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AD524CD

Part # AD524CD
Description PRECISION LOW NOISE IN AMP
Category IC
Availability Out of Stock
Qty 0
Qty Price
1 + $59.13764



Technical Document


DISCLAIMER: The information provided herein is solely for informational purposes. Customers must be aware of the suitability of this product for their application, and consider that variable factors such as Manufacturer, Product Category, Date Codes, Pictures and Descriptions may differ from available inventory.

AD524
REV. E–4–
METALIZATION PHOTOGRAPH
Contact factory for latest dimensions.
Dimensions shown in inches and (mm).
OUTPUT
NULL
G = 10
14 13
12
11 10
9
8
7
6
5
4
3
2
1
16
G = 100 G = 1000 SENSE
OUTPUT
+V
S
REFERENCE
INPUT
NULL
RG
2
+INPUT
–INPUT
RG
1
OUTPUT
NULL
INPUT
NULL
–V
S
PAD NUMBERS CORRESPOND TO PIN NUMBERS FOR THE
D-16 AND R-16 16-PIN CERAMIC PACKAGES.
0.170 (4.33)
15
0.103
(2.61)
NOTES
1
Stresses above those listed under Absolute Maximum Ratings may cause permanent
damage to the device. This is a stress rating only; functional operation of the device at
these or any other conditions above those indicated in the operational section of this
specification is not implied. Exposure to absolute maximum rating conditions for
extended periods may affect device reliability.
2
Max input voltage specification refers to maximum voltage to which either input
terminal may be raised with or without device power applied. For example, with ± 18
volt supplies max V
IN
is ± 18 volts, with zero supply voltage max V
IN
is ± 36 volts.
ABSOLUTE MAXIMUM RATINGS
l
Supply Voltage . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . ± 18 V
Internal Power Dissipation . . . . . . . . . . . . . . . . . . . . . 450 mW
Input Voltage
2
(Either Input Simultaneously) |V
IN
| + |V
S
| . . . . . . . . <36 V
Output Short Circuit Duration . . . . . . . . . . . . . . . . . Indefinite
Storage Temperature Range
(R) . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . –65°C to +125°C
(D, E) . . . . . . . . . . . . . . . . . . . . . . . . . . . –65°C to +150°C
Operating Temperature Range
AD524A/B/C . . . . . . . . . . . . . . . . . . . . . . . . –25°C to +85°C
AD524S . . . . . . . . . . . . . . . . . . . . . . . . . . –55°C to +125°C
Lead Temperature (Soldering 60 secs) . . . . . . . . . . . . +300°C
CONNECTION DIAGRAMS
Ceramic (D) and
SOIC (R) Packages
TOP VIEW
(Not to Scale)
16
15
14
13
12
11
10
9
1
2
3
4
5
6
7
8
415
514
–V
S
+V
S
OUTPUT
OFFSET NULL
INPUT
OFFSET NULL
– INPUT
+ INPUT
RG
2
INPUT NULL
INPUT NULL
REFERENCE
–V
S
+V
S
RG
1
OUTPUT NULL
OUTPUT NULL
G = 10
G = 100
G = 1000
SENSE
OUTPUT
AD524
SHORT TO
RG
2
FOR
DESIRED
GAIN
Leadless Chip Carrier
TOP VIEW
4
5
6
7
8
14
15
16
17
18
1
2
32019
9 10111213
RG
2
INPUT NULL
NC
INPUT NULL
REFERENCE
+INPUT
–INPUT
NC
RG
1
OUTPUT
–V
S
+V
S
NC
SENSE
OUTPUT NULL
G = 100
G = 10
SHORT TO
RG
2
FOR
DESIRED
GAIN
OUTPUT
NULL
NC
G = 1000
AD524
NC = NO CONNECT
719
518
–V
S
+V
S
OUTPUT
OFFSET NULL
INPUT
OFFSET NULL
CAUTION
ESD (electrostatic discharge) sensitive device. Electrostatic charges as high as 4000 V readily
accumulate on the human body and test equipment and can discharge without detection.
Although the AD524 features proprietary ESD protection circuitry, permanent damage may
occur on devices subjected to high energy electrostatic discharges. Therefore, proper ESD
precautions are recommended to avoid performance degradation or loss of functionality.
WARNING!
ESD SENSITIVE DEVICE
ORDERING GUIDE
Model Temperature Ranges Package Descriptions Package Options
AD524AD –40°C to +85°C 16-Lead Ceramic DIP D-16
AD524AE –40°C to +85°C 20-Terminal Leadless Chip Carrier E-20A
AD524AR-16 –40°C to +85°C 16-Lead Gull-Wing SOIC R-16
AD524AR-16-REEL –40°C to +85°C Tape & Reel Packaging 13"
AD524AR-16-REEL7 –40°C to +85°C Tape & Reel Packaging 7"
AD524BD –40°C to +85°C 16-Lead Ceramic DIP D-16
AD524BE –40°C to +85°C 20-Terminal Leadless Chip Carrier E-20A
AD524CD –40°C to +85°C 16-Lead Ceramic DIP D-16
AD524SD –55°C to +125°C 16-Lead Ceramic DIP D-16
AD524SD/883B –55°C to +125°C 16-Lead Ceramic DIP D-16
5962-8853901EA* –55°C to +125°C 16-Lead Ceramic DIP D-16
AD524SE/883B –55°C to +125°C 20-Terminal Leadless Chip Carrier E-20A
AD524SCHIPS –55°C to +125°C Die
*
Refer to official DESC drawing for tested specifications.
REV. E
–5–
LOAD RESISTANCE – V
OUTPUT VOLTAGE SWING – V
p-p
30
20
0
10 100 10k
1k
10
Figure 3. Output Voltage Swing vs.
Load Resistance
TEMPERATURE – 8C
INPUT BIAS CURRENT – nA
40
30
–40
–75 125
–25 25 75
0
–20
–30
20
10
–10
Figure 6. Input Bias Current vs.
Temperature
FREQUENCY – Hz
GAIN – V/V
0 10 10M100 1k 10k 100k 1M
1000
100
10
1
Figure 9. Gain vs. Frequency
SUPPLY VOLTAGE – 6V
OUTPUT VOLTAGE SWING – 6V
20
15
0
05 2010 15
10
5
Figure 2. Output Voltage Swing vs.
Supply Voltage
SUPPLY VOLTAGE – 6V
INPUT BIAS CURRENT – 6nA
16
14
0
05 20
10 15
8
6
4
2
12
10
Figure 5. Input Bias Current vs.
Supply Voltage
WARM-UP TIME – Minutes
DV
OS
FROM FINAL VALUE – mV
0 1.0 8.02.0 3.0 4.0 5.0 6.0 7.0
0
3
4
5
6
1
2
Figure 8. Offset Voltage, RTI, Turn
On Drift
SUPPLY VOLTAGE – 6V
INPUT VOLTAGE – 6V
20
15
0
05 20
10 15
10
5
+258C
Figure 1. Input Voltage Range vs.
Supply Voltage, G = 1
SUPPLY VOLTAGE – 6V
QUIESCENT CURRENT – mA
8.0
6.0
0
05 2010 15
4.0
2.0
Figure 4. Quiescent Current vs.
Supply Voltage
INPUT VOLTAGE – 6V
INPUT BIAS CURRENT – 6nA
16
14
0
05 2010 15
8
6
4
2
12
10
Figure 7. Input Bias Current vs. Input
Voltage
AD524–Typical Characteristics
AD524
REV. E–6–
–140
0
–120
–80
–60
–40
–20
–100
FREQUENCY – Hz
CMRR – dB
0 10 10M100 1k 10k 100k 1M
G = 1000
G = 100
G = 10
G = 1
Figure 10. CMRR vs. Frequency RTI,
Zero to 1k Source Imbalance
FREQUENCY – Hz
10 100k
100 1k 10k
140
80
60
40
20
120
100
160
0
+V
S
= 15V dc +
1V p-p SINEWAVE
G = 1000
G = 100
G
= 10
POWER SUPPLY REJECTION – dB
G = 1
Figure 13. Positive PSRR vs.
Frequency
FREQUENCY – Hz
CURRENT NOISE SPECTRAL DENSITY – fA/ Hz
100k
10k
0 1 10k
10 100 1k
1000
100
Figure 16. Input Current Noise vs.
Frequency
FREQUENCY – Hz
FULL POWER RESPONSE – V
p-p
30
20
0
1k 10k 1M100k
10
G = 1, 10, 100
BANDWIDTH LIMITED
G1000 G100 G10
Figure 11. Large Signal Frequency
Response
FREQUENCY – Hz
10 100k
100 1k 10k
140
80
60
40
20
120
100
160
0
G = 1000
G
= 10
POWER SUPPLY REJECTION – dB
G = 1
G = 100
–V
S
= –15V dc +
1V p-p SINEWAVE
Figure 14. Negative PSRR vs.
Frequency
0.1 – 10Hz
VERTICAL SCALE; 1 DIVISION = 5mV
Figure 17. Low Frequency Noise␣ –
G = 1 (System Gain = 1000)
SLEW RATE –V/ms
GAIN – V/V
10.0
8.0
0
1 1000
10 100
6.0
4.0
2.0
G = 1000
Figure 12. Slew Rate vs. Gain
FREQUENCY – Hz
VOLT NSD – nV/ Hz
1000
100
0.1
1 10 100k
100 1k 10k
10
1
G = 1
G = 10
G = 100, 1000
G = 1000
Figure 15. RTI Noise Spectral
Density vs. Gain
0.1 – 10Hz
VERTICAL SCALE; 1 DIVISION = 0.1mV
Figure 18. Low Frequency Noise –
G = 1000 (System Gain = 100,000)
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