AD8616ARZ Analog Devices Inc, AD8616ARZ Datasheet - Page 13

IC OPAMP GP R-R CMOS 24MHZ 8SOIC

AD8616ARZ

Manufacturer Part Number
AD8616ARZ
Description
IC OPAMP GP R-R CMOS 24MHZ 8SOIC
Manufacturer
Analog Devices Inc
Datasheet

Specifications of AD8616ARZ

Slew Rate
12 V/µs
Amplifier Type
General Purpose
Number Of Circuits
2
Output Type
Rail-to-Rail
Gain Bandwidth Product
24MHz
Current - Input Bias
0.2pA
Voltage - Input Offset
23µV
Current - Supply
1.7mA
Current - Output / Channel
150mA
Voltage - Supply, Single/dual (±)
2.7 V ~ 5.5 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
1
Bandwidth
24MHz
Supply Voltage Range
2.7V To 5V
Amplifier Case Style
SOIC
No. Of Pins
8
Operating Temperature Range
-40°C To +125°C
Lead Free Status / RoHS Status
Lead free / RoHS Compliant
-3db Bandwidth
-
Lead Free Status / RoHS Status
Lead free / RoHS Compliant, Lead free / RoHS Compliant

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HIGH SPEED PHOTODIODE PREAMPLIFIER
The AD8615/AD8616/AD8618 are excellent choices for I-to-V
conversions. The very low input bias, low current noise, and
high unity-gain bandwidth of the parts make them suitable,
especially for high speed photodiode preamplifiers.
In high speed photodiode applications, the diode is operated in a
photoconductive mode (reverse biased). This lowers the junction
capacitance at the expense of an increase in the amount of dark
current that flows out of the diode.
The total input capacitance, C1, is the sum of the diode and op
amp input capacitances. This creates a feedback pole that causes
degradation of the phase margin, making the op amp unstable.
Therefore, it is necessary to use a capacitor in the feedback to
compensate for this pole.
To get the maximum signal bandwidth, select
where f
ACTIVE FILTERS
The low input bias current and high unity-gain bandwidth of
the AD8616 make it an excellent choice for precision filter design.
Figure 45 shows the implementation of a second-order, low-pass
filter. The Butterworth response has a corner frequency of 100 kHz
and a phase shift of 90°. The frequency response is shown in
Figure 46.
C
2
U
=
is the unity-gain bandwidth of the amplifier.
I
D
–V
BIAS
2
Figure 44. High Speed Photodiode Preamplifier
π
R
Figure 45. Second-Order, Low-Pass Filter
C
1.1k Ω
V
R
f 2
1
IN
SH
U
C
D
2nF
1.1k Ω
1nF
C
IN
V
V
V–
V+
CC
EE
+
+2.5V
–2.5V
V–
V+
C2
R2
Rev. E | Page 13 of 20
POWER DISSIPATION
Although the AD8615/AD8616/AD8618 are capable of providing
load currents up to 150 mA, the usable output, load current,
and drive capability are limited to the maximum power dissipation
allowed by the device package.
In any application, the absolute maximum junction temperature
for the AD8615/AD8616/AD8618 is 150°C. This should never
be exceeded because the device could suffer premature failure.
Accurately measuring power dissipation of an integrated circuit
is not always a straightforward exercise; Figure 47 is a design aid
for setting a safe output current drive level or selecting a heat
sink for the package options available on the AD8616.
These thermal resistance curves were determined using the
AD8616 thermal resistance data for each package and a
maximum junction temperature of 150°C.
Figure 46. Second-Order Butterworth, Low-Pass Filter Frequency Response
Figure 47. Maximum Power Dissipation vs. Ambient Temperature
–10
–20
–30
–40
1.5
1.0
0.5
10
0
0
0.1
0
20
1
10
40
MSOP
AD8615/AD8616/AD8618
SOIC
TEMPERATURE (°C)
FREQUENCY (Hz)
100
60
80
1k
100
10k
100k
120
140
1M

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