AD8620ARZ Analog Devices Inc, AD8620ARZ Datasheet - Page 21

IC OPAMP JFET 25MHZ DUAL 8SOIC

AD8620ARZ

Manufacturer Part Number
AD8620ARZ
Description
IC OPAMP JFET 25MHZ DUAL 8SOIC
Manufacturer
Analog Devices Inc
Datasheet

Specifications of AD8620ARZ

Slew Rate
60 V/µs
Design Resources
Using AD7328 in Appls with Single-Ended Industrial-Level Signals (CN0047)
Amplifier Type
J-FET
Number Of Circuits
2
Gain Bandwidth Product
25MHz
Current - Input Bias
3pA
Voltage - Input Offset
85µV
Current - Supply
3mA
Current - Output / Channel
45mA
Voltage - Supply, Single/dual (±)
±5 V ~ 13 V
Operating Temperature
-40°C ~ 125°C
Mounting Type
Surface Mount
Package / Case
8-SOIC (3.9mm Width)
Op Amp Type
Precision
No. Of Amplifiers
2
Bandwidth
25MHz
Supply Voltage Range
± 5V To ± 13V
Amplifier Case Style
SOIC
No. Of Pins
8
Lead Free Status / RoHS Status
Lead free / RoHS Compliant
Output Type
-
-3db Bandwidth
-
Lead Free Status / RoHS Status
Lead free / RoHS Compliant, Lead free / RoHS Compliant

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High Speed, Low Noise Differential Driver
The AD8620 is a perfect candidate as a low noise differential
driver for many popular ADCs. There are also other applica-
tions (such as balanced lines) that require differential drivers.
The circuit of Figure 70 is a unique line driver widely used in
industrial applications. With ±13 V supplies, the line driver can
deliver a differential signal of 23 V p-p into a 1 kΩ load. The
high slew rate and wide bandwidth of the AD8620 combine to
yield a full power bandwidth of 145 kHz while the low noise
front end produces a referred-to-input noise voltage spectral
density of 6 nV/√Hz. The design is a balanced transmission system
without transformers, where output common-mode rejection of
noise is of paramount importance. Like the transformer-based
design, either output can be shorted to ground for unbalanced
line driver applications without changing the circuit gain of 1.
This allows the design to be easily set to noninverting, inverting,
or differential operation.
Rev. F | Page 21 of 24
3
2
V+
V–
AD8610
6
1kΩ
1kΩ
R4
R3
Figure 70. Differential Driver
R8
1kΩ
R9
1kΩ
0
3
2
5
6
1kΩ
V+
V+
R1
V–
V–
1/2 AD8620
1/2 AD8620
1kΩ
1
R2
7
U2
U3
AD8610/AD8620
1kΩ
R12
R10
50Ω
R11
50Ω
V
O
2 – V
0
R13
1kΩ
O
1 = V
R5
1kΩ
R6
10kΩ
R7
1kΩ
IN
V
V
O
O
1
2

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