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MCP6H84-E/ST データシート(PDF) 18 Page - Microchip Technology

部品番号 MCP6H84-E/ST
部品情報  5.5 MHz, 12V Op Amps
PDF  42 Pages
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メーカー  MICROCHIP [Microchip Technology]
ホームページ  http://www.microchip.com
Logo MICROCHIP - Microchip Technology

MCP6H84-E/ST データシート(HTML) 18 Page - Microchip Technology

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MCP6H81/2/4
DS22320B-page 18
 2012 Microchip Technology Inc.
4.2
Rail-to-Rail Output
The output voltage range of the MCP6H81/2/4 op amps
is 0.020V (typical) and 11.980V (typical) when
RL =10k is connected to VDD/2 and VDD =12V.
Refer
to
Figures 2-24
through
2-29
for
more
information.
4.3
Capacitive Loads
Driving large capacitive loads can cause stability
problems for voltage feedback op amps. As the load
capacitance increases, the feedback loop’s phase
margin decreases, and the closed-loop bandwidth is
reduced. This produces gain peaking in the frequency
response, with overshoot and ringing in the step
response. While a unity-gain buffer (G = +1V/V) is the
most sensitive to capacitive loads, all gains show the
same general behavior.
When driving large capacitive loads with these op
amps (e.g., > 100 pF when G = + 1V/V), a small series
resistor at the output (RISO in Figure 4-4) improves the
feedback loop’s phase margin (stability) by making the
output load resistive at higher frequencies. The
bandwidth will generally be lower than the bandwidth
with no capacitance load.
FIGURE 4-4:
Output Resistor, RISO
Stabilizes Large Capacitive Loads.
Figure 4-5 gives the recommended RISO values for
different capacitive loads and gains. The x-axis is the
normalized load capacitance (CL/GN), where GN is the
circuit’s noise gain. For non-inverting gains, GN and the
Signal Gain are equal. For inverting gains, GN is
1 + |Signal Gain| (e.g., -1V/V gives GN = +2V/V).
After selecting RISO for your circuit, double check the
resulting
frequency
response
peaking
and
step
response overshoot. Modify RISO’s value until the
response
is
reasonable.
Bench
evaluation
and
simulations with the MCP6H81/2/4 SPICE macro
model are helpful.
FIGURE 4-5:
Recommended RISO Values
for Capacitive Loads.
4.4
Supply Bypass
With this family of operational amplifiers, the power
supply pin (VDD for single supply) should have a local
bypass capacitor (i.e., 0.01 µF to 0.1 µF) within 2 mm
for good high-frequency performance. It can use a bulk
capacitor (i.e., 1 µF or larger) within 100 mm to provide
large, slow currents. This bulk capacitor can be shared
with other analog parts.
4.5
Unused Op Amps
An unused op amp in a quad package (MCP6H84)
should be configured as shown in Figure 4-6. These
circuits prevent the output from toggling and causing
crosstalk. Circuit A sets the op amp at its minimum
noise gain. The resistor divider produces any desired
reference voltage within the output voltage range of the
op amp, and the op amp buffers that reference voltage.
Circuit B uses the minimum number of components
and operates as a comparator, but it may draw more
current.
FIGURE 4-6:
Unused Op Amps.
VIN
RISO
VOUT
CL
+
MCP6H8X
10
100
1000
G
N:
1 V/V
2 V/V
V
DD = 12 V
R
L = 10 k
1
1.E-11
1.E-10
1.E-09
1.E-08
1.E-07
1.E-06
Normalized Load Capacitance; C
L/GN (F)
t 5 V/V
10p
100p
1n
10n
0.1μ
VDD
VDD
R1
R2
VDD
VREF
V
REF
V
DD
R
2
R
1
R
2
+
--------------------
=
¼ MCP6H84 (A)
¼ MCP6H84 (B)



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