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ADA4855-3YCPZ-R7 数据表(PDF) 18 Page - Analog Devices

部件名 ADA4855-3YCPZ-R7
功能描述  Single Supply, High Speed, Rail-to-Rail Output, Triple Op Amp
PDF  21 Pages
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制造商  AD [Analog Devices]
网页  http://www.analog.com
标志 AD - Analog Devices

ADA4855-3YCPZ-R7 数据表(HTML) 18 Page - Analog Devices

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Data Sheet
ADA4855-3
Rev. A | Page 17 of 20
SINGLE-SUPPLY OPERATION
The ADA4855-3 is designed for a single power supply. Figure 54
shows the schematic for a single 5 V supply video driver. The
input signal is ac-coupled into the amplifier via C1. Resistor R2
and Resistor R4 establish the input midsupply reference for the
amplifier. C5 prevents constant current from being drawn
through the gain set resistor. C6 is the output coupling capacitor.
For more information on ac-coupled single-supply operation of
op amps, see Avoiding Op-Amp Instability Problems in Single-
Supply Applications, Analog Dialogue, Volume 35, Number 2,
March-May, 2001, at www.analog.com.
C2
1µF
R2
50kΩ
R4
50kΩ
R3
1kΩ
C1
22µF
U1
R1
75Ω
R5
1kΩ
R6
1kΩ
C6
220µF
R7
75Ω
R8
75Ω
C5
22µF
ADA4855-3
5V
VOUT
VIN
–VS
C3
10µF
C4
0.01µF
5V
Figure 54. AC-Coupled, Single-Supply Video Driver Schematic
Another way to configure the ADA4855-3 in single-supply
operation is dc-coupled. The common-mode input voltage can
go ~200 mV below ground, which makes it a true single-supply
amplifier. However, in video applications, the black level is set at
0 V, which means that the output of the amplifier must go to
ground level as well. The ADA4855-3 has a rail-to-rail output
that can swing to within 100 mV from either rail. Figure 55
shows the schematic for adding 50 mV dc offset to the input
signal so that the output is not clipped while still properly
terminating the input with 75 Ω.
R1
3.74kΩ
U1
R2
76.8Ω
R3
1kΩ
R4
1kΩ
R5
75Ω
R6
75Ω
ADA4855-3
5V
VOUT
VIN
–VS
C1
10µF
C2
0.1µF
5V
Figure 55. DC-Coupled, Single-Supply Video Driver Schematic
POWER SUPPLY BYPASSING
Careful attention must be paid to bypassing the power supply
pins of the ADA4855-3. High quality capacitors with low
equivalent series resistance (ESR), such as multilayer ceramic
capacitors (MLCCs), should be used to minimize supply voltage
ripple and power dissipation. A large, usually tantalum, 2.2 μF
to 47 μF capacitor located in close proximity to the ADA4855-3
is required to provide good decoupling for lower frequency
signals. The actual value is determined by the circuit transient
and frequency requirements. In addition, 0.1 μF MLCC decoupling
capacitors should be located as close to each of the power supply
pins and across both supplies as is physically possible, no more
than 1/8-inch away. The ground returns should terminate
immediately into the ground plane. Locating the bypass capacitor
return close to the load return minimizes ground loops and
improves performance.
LAYOUT
As is the case with all high speed applications, careful attention
to printed circuit board (PCB) layout details prevents associated
board parasitics from becoming problematic. The ADA4855-3
can operate at up to 410 MHz; therefore, proper RF design
techniques must be employed. The PCB should have a ground
plane covering all unused portions of the component side of the
board to provide a low impedance return path. Removing the
ground plane on all layers from the area near and under the
input and output pins reduces stray capacitance. Signal lines
connecting the feedback and gain resistors should be kept as short
as possible to minimize the inductance and stray capacitance
associated with these traces. Termination resistors and loads
should be located as close as possible to their respective inputs
and outputs. Input and output traces should be kept as far apart
as possible to minimize coupling (crosstalk) through the board.
Adherence to microstrip or stripline design techniques for long
signal traces (greater than 1 inch) is recommended. For more
information on high speed board layout, see A Practical Guide
to High-Speed Printed-Circuit-Board Layout, Analog Dialogue,
Volume 39, September 2005, at www.analog.com.



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