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AD526BD

Part # AD526BD
Description
Category IC
Availability Out of Stock
Qty 0
Qty Price
1 + $10.00000



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.

AD526–Typical Performance Characteristics
REV. D
–4–
SUPPLY VOLTAGE – 6V
OUTPUT VOLTAGE SWING – 6V
20
15
0
05 20
10 15
10
5
+258C
R
L
= 2kV
Figure 1. Output Voltage Swing vs.
Supply Voltage, G = 16
TEMPERATURE – 8C
INPUT BIAS CURRENT
100nA
10nA
1pA
–60 –20 140
20 60 100
1nA
100pA
10pA
Figure 4. Input Bias Current vs.
Temperature
FREQUENCY – Hz
FULL POWER RESPONSE – V p-p
25
1k
GAIN = 8, 16
GAIN = 1, 2, 4
20
15
10
5
0
10k 100k 1M 10M
Figure 7. Large Signal Frequency
Response
LOAD RESISTANCE – V
OUTPUT VOLTAGE SWING – 6V
30
0
100 1k 10k
20
10
@ V
S
= 615V
Figure 2. Output Voltage Swing vs.
Load Resistance
INPUT VOLTAGE – V
INPUT BIAS CURRENT – pA
75
–10
50
25
0
–5 0 5 10
V
S
= 615V
Figure 5. Input Bias Current vs. Input
Voltage
FREQUENCY – Hz
POWER SUPPLY REJECTION – dB
100
1
80
60
40
20
10
10 100 1k 10k 100k 1M
615V WITH 1V p-p
SINE WAVE
+SUPPLY
–SUPPLY
Figure 8. PSRR vs. Frequency
SUPPLY VOLTAGE – 6V
INPUT BIAS CURRENT – pA
20
15
0
05 20
10 15
10
5
V
IN
= 0
Figure 3. Input Bias Current vs.
Supply Voltage
FREQUENCY – Hz
GAIN
20
10 100 10M
10
1
1k 10k 100k 1M
16
8
4
2
1
Figure 6. Gain vs. Frequency
TEMPERATURE – 8C
NORMALIZED GAIN
1.0002
–60
1.0001
1.0000
0.9999
0.9998
–20 20 60 100 140
Figure 9. Normalized Gain vs.
Temperature, Gain = 1
AD526
REV. D
–5–
*For Settling Time Traces, 0.01% = 1/2 Vertical Division
FREQUENCY – Hz
1000
10
100
INPUT NOISE VOLTAGE – nV/ Hz
10 100k100
1k
10k
Figure 10. Noise Spectral Density
Figure 13. Large Signal Pulse
Response and Settling Time,*
G = 1
Figure 16. Small Signal Pulse
Response, G = 2
TEMPERATURE – 8C
NONLINEARITY – %FSR
0.006
–60
0.004
0.002
0.000
–0.002
–0.004
–20 20 60 100 140
Figure 11. Nonlinearity vs.
Temperature, Gain = 1
Figure 14. Small Signal Pulse
Response, G = 1
Figure 17. Large Signal Pulse
Response and Settling Time,*
G = 4
Figure 12. Wideband Output Noise,
G = 16 (Amplified by 10)
Figure 15. Large Signal Pulse
Response and Settling Time,*
G = 2
Figure 18. Small Signal Pulse
Response, G = 4
AD526
REV. D
–6–
*For Settling Time Traces, 0.01% = 1/2 Vertical Division
**Scope Traces are: Top: Output Transition; Middle: Output Settling; Bottom: Digital Input.
Figure 19. Large Signal Pulse
Response and Settling Time,* G = 8
Figure 22. Small Signal Pulse
Response, Gain = 16
FREQUENCY – Hz
OUTPUT IMPEDANCE – V
100
1
10k 10M
10
100k 1M
G = 4, 16
G = 1
G = 2, 8
Figure 25. Output Impedance vs.
Frequency
Figure 20. Small Signal Pulse
Response, G = 8
FREQUENCY – Hz
TOTAL HARMONIC DISTORTION – dB
–60
10
–70
–80
–90
–100
100 1k 10k 100k
Figure 23. Total Harmonic Distortion
vs. Frequency Gain = 16
Figure 26. Gain Change Settling
Time,** Gain Change: 1 to 2
Figure 21. Large Signal Pulse
Response and Settling Time,* G = 16
FREQUENCY – Hz
PHASE DISTORTION – Dedrees
10
10
5
0
–5
–10
100 1k 10k 100k
Figure 24. Phase Distortion vs.
Frequency, Gain = 16
Figure 27. Gain Change Settling
Time,** Gain Change 1 to 4
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