AD8350ARMZ20 Analog Devices Inc, AD8350ARMZ20 Datasheet - Page 10

IC AMP DIFF LOW-DISTORTION 8MSOP

AD8350ARMZ20

Manufacturer Part Number
AD8350ARMZ20
Description
IC AMP DIFF LOW-DISTORTION 8MSOP
Manufacturer
Analog Devices Inc
Datasheet

Specifications of AD8350ARMZ20

Current - Supply
28mA
Frequency
0Hz ~ 1GHz
Gain
20dB
Noise Figure
5.9dB
P1db
-2.6dBm
Package / Case
8-TSSOP, 8-MSOP (0.118", 3.00mm Width)
Rf Type
Cellular
Test Frequency
250MHz
Voltage - Supply
5 V ~ 10 V
No. Of Amplifiers
1
Input Offset Voltage
1mV
Gain Db Max
21dB
Bandwidth
0.9GHz
Slew Rate
2000V/µs
Supply Voltage Range
5V To 10V
Supply Current
28mA
Amplifier Case Style
MSOP
No. Of Pins
8
Lead Free Status / RoHS Status
Lead free / RoHS Compliant

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Manufacturer
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AD8350
Figure 8 shows a typical implementation of the shunt divider
concept. The reduced input impedance that results from the
parallel combination of the shunt resistor and the input impedance
of the AD8350 adds attenuation to the input signal effectively
reducing the gain. For frequencies less than 100 MHz, the input
impedance of the AD8350 can be modeled as a real 200 Ω resis-
tance (differential). Assuming the frequency is low enough to
ignore the shunt reactance of the input, and high enough such
that the reactance of moderately sized ac-coupling capacitors
can be considered negligible, the insertion loss, IL, due to the
shunt divider can be expressed as:
IL dB
where
R
IN
(
R
SHUNT
)
V
=
R
R
S
V
S
S
R
R
S
20
S
S
=
×
R
R
Log
R
R
SHUNT
SHUNT
C
C
AC
AC
IN
IN
10
×
+
R
R
(
ENBL (5V)
R
SHUNT
SHUNT
C
C
IN
AC
AC
R
(
ENBL
R
(5V TO 10V)
IN
(5V)
R
R
IN
FEXT
SHUNT
8
1
R
and
R
8
1
IN
AD8350
+
SHUNT
R
AD8350
+V
7
FEXT
2
+V
R
7
2
S
R
S
S
(5V TO 10V)
+
IN
)
6
3
0.1 F
R
6
3
S
=
5
)
4
100
5
4
0.1 F
Ω sin e e
C
C
C
C
AC
AC
AC
AC
R
R
gl
R
R
L
L
L
L
nded
(3)
The insertion loss and the resultant power gain for multiple
shunt resistor values is summarized in Table I. The source
resistance and input impedance need careful attention when
using Equation 1. The reactance of the input impedance of the
AD8350 and the ac-coupling capacitors need to be considered
before assuming they have negligible contribution. Figure 10
shows the effective power gain for multiple values of R
the AD8350-15 and AD8350-20.
R
50
100
200
300
400
The gain can be adjusted dynamically by employing external
feedback resistors as shown in Figure 9. The effective attenua-
tion is a result of the lowered input impedance as with the shunt
resistor method, yet there is no additional noise contribution at
the input of the device. It is necessary to use well-matched resistors
to minimize common-mode offset errors. Quality 1% tolerance
resistors should be used along with a symmetric board layout to
help guarantee balanced performance. The effective gain for mul-
tiple values of external feedback resistors is shown in Figure 11.
SHUNT
20
18
16
14
12
10
Table I. Gain Adjustment Using Shunt Resistor,
R
8
6
4
2
0
S
0
= 100
100
IL–dB
6.02
3.52
1.94
1.34
1.02
and R
200
IN
300
AD8350-20
= 100
AD8350-15
R
SHUNT
AD8350-15
8.98
11.48
13.06
13.66
13.98
400
Single-Ended
Power Gain–dB
500
600
700
AD8350-20
13.98
16.48
18.06
18.66
18.98
SHUNT
800
for

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