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AD8603AUJZ-R2 Datasheet(PDF) 13 Page - Analog Devices

Part # AD8603AUJZ-R2
Description  Precision Micropower, Low Noise CMOS, Rail-to-Rail Input/Output Operational Amplifiers
PDF  17 Pages
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Manufacturer  AD [Analog Devices]
Direct Link  http://www.analog.com
Logo AD - Analog Devices

AD8603AUJZ-R2 Datasheet(HTML) 13 Page - Analog Devices

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Data Sheet
AD8603/AD8607/AD8609
APPLICATIONS
analog.com
Rev. D | 13 of 17
NO PHASE REVERSAL
The AD8603/AD8607/AD8609 do not exhibit phase inversion even
when the input voltage exceeds the maximum input common-mode
voltage. Phase reversal can cause permanent damage to the ampli-
fier, resulting in system lockups. The AD8603/AD8607/AD8609 can
handle voltages of up to 1 V over the supply.
Figure 41. No Phase Response
INPUT OVERVOLTAGE PROTECTION
If a voltage 1 V higher than the supplies is applied at either input,
the use of a limiting series resistor is recommended. If both inputs
are used, each one should be protected with a series resistor.
To ensure good protection, the current should be limited to a maxi-
mum of 5 mA. The value of the limiting resistor can be determined
from the following equation:
(VIN − VS)/(RS + 200 Ω) ≤ 5 mA
(1)
DRIVING CAPACITIVE LOADS
The AD8603/AD8607/AD8609 are capable of driving large capaci-
tive loads without oscillating. Figure 42 shows the output of the
AD8603/AD8607/AD8609 in response to a 100 mV input signal,
with a 2 nF capacitive load.
Although it is configured in positive unity gain (the worst case), the
AD8603 shows less than 20% overshoot. Simple additional circuitry
can eliminate ringing and overshoot.
One technique is the snubber network, which consists of a series
RC and a resistive load (see Figure 43). With the snubber in
place, the AD8603/AD8607/AD8609 are capable of driving capaci-
tive loads of 2 nF with no ringing and less than 3% overshoot.
The use of the snubber circuit is usually recommended for unity
gain configurations. Higher gain configurations help improve the
stability of the circuit. Figure 44 shows the same output response
with the snubber in place.
Figure 42. Output Response to a 2 nF Capacitive Load, Without Snubber
Figure 43. Snubber Network
Figure 44. Output Response to a 2 nF Capacitive Load with Snubber
Optimum values for RS and CS are determined empirically; Table 5
lists a few starting values.
Table 5. Optimum Values for the Snubber Network
CL (pF)
RS (Ω)
CS (pF)
100 to ~500
500
680
1500
100
330
1600 to ~2000
400
100



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