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AD8332ACP-R2 数据表(PDF) 30 Page - Analog Devices

部件名 AD8332ACP-R2
功能描述  Ultralow Noise VGAs with Preamplifier and Programmable RIN
PDF  40 Pages
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制造商  AD [Analog Devices]
网页  http://www.analog.com
标志 AD - Analog Devices

AD8332ACP-R2 数据表(HTML) 30 Page - Analog Devices

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AD8331/AD8332/AD8334
Rev. E | Page 30 of 40
APPLICATIONS
LNA—EXTERNAL COMPONENTS
The LMD pin (connected to the bias circuitry) must be bypassed to
ground and signal sourced to the INH pin capacitively coupled
using 2.2 nF to 0.1 μF capacitors (see Figure 81).
The unterminated input impedance of the LNA is 6 kΩ. The
user can synthesize any LNA input resistance between 50 Ω and
6 kΩ. RFB is calculated according to Equation 6 or selected from
Table 7.
( )
()
IN
IN
FB
R
R
R
6
33
×
=
(6)
Table 7. LNA External Component Values for Common
Source Impedances
RIN (Ω)
RFB (Nearest STD 1% Value, Ω)
CSH (pF)
50
280
22
75
412
12
100
562
8
200
1.13 k
1.2
500
3.01 k
None
6 k
None
When active input termination is used, a decoupling capacitor
(CFB) is required to isolate the input and output bias voltages of
the LNA.
The shunt input capacitor, CSH, reduces gain peaking at higher
frequencies where the active termination match is lost due to
the gain roll-off of the LNA at high frequencies. The value of
CSH diminishes as RIN increases to 500 Ω, at which point no
capacitor is required. Suggested values for CSH for 50 Ω ≤ RIN
200 Ω are shown in Table 7.
When a long trace to Pin INH is unavoidable, or if both LNA
outputs drive external circuits, a small ferrite bead (FB) in series
with Pin INH preserves circuit stability with negligible effect on
noise. The bead shown is 75 Ω at 100 MHz (Murata BLM21 or
equivalent). Other values can prove useful.
Figure 82 shows the interconnection details of the LNA output.
Capacitive coupling between the LNA outputs and the VGA
inputs is required because of the differences in their dc levels
and the need to eliminate the offset of the LNA. Capacitor
values of 0.1 μF are recommended. There is 0.4 dB loss in gain
between the LNA output and the VGA input due to the 5 Ω
output resistance. Additional loading at the LOP and LON
outputs affect LNA gain.
21
22
23
24
28
25
26
27
15
16
20
17
18
19
8
7
6
5
1
4
3
2
14
13
9
12
11
10
VCM2
RCLMP
COMM
VOL2
VOH2
VIP2
GAIN
VIN2
LOP2
COM2
LMD2
LON2
VPS2
INH2
COM1
LOP1
LMD1
LON1
VPS1
INH1
VOH1
ENB
VIP1
VCM1
VIN1
VPSV
VOL1
HILO
0.1µF
CFB*
CSH*
RFB*
CLMD
0.1µF
1nF
5V
5V
1nF
5V
5V
*
*
VGA OUT
VGA OUT
5V
1nF
0.1µF
LNA OUT
1nF
VGAIN
FB
1nF
0.1µF
0.1µF
0.1µF
0.1µF
1nF
0.1µF
*SEE TEXT
LNA
SOURCE
Figure 81. Basic Connections for a Typical Channel (AD8332 Shown)
VIN
VIP
LOP
VCM
100Ω
50Ω
100Ω
LON
RFB
CSH
TO EXT
CIRCUIT
TO EXT
CIRCUIT
LNA
DECOUPLING
RESISTOR
LNA
DECOUPLING
RESISTOR
50Ω
5Ω
5Ω
LNA
Figure 82. Interconnections of the LNA and VGA
Both LNA outputs are available for driving external circuits.
Pin LOP should be used in those instances when a single-ended
LNA output is required. The user should be aware of stray
capacitance loading of the LNA outputs, in particular LON. The
LNA can drive 100 Ω in parallel with 10 pF. If an LNA output is
routed to a remote PC board, it tolerates a load capacitance up
to 100 pF with the addition of a 49.9 Ω series resistor or ferrite
75 Ω/100 MHz bead.
Gain Input
The GAIN pin is common to both channels of the AD8332. The
input impedance is nominally 10 MΩ and a bypass capacitor
from 100 pF to1 nF is recommended.



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