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LPV821 数据表(PDF) 14 Page - Texas Instruments

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部件名 LPV821
功能描述  650nA, Precision, Nanopower, Zero-Drift Amplifier
PDF  24 Pages
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制造商  TI1 [Texas Instruments]
网页  http://www.ti.com
标志 TI1 - Texas Instruments

LPV821 数据表(HTML) 14 Page - Texas Instruments

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VIN
VOUT
VIN
+
VOUT
RISO
CL
Vcc
14
LPV821
SNOSD36A – AUGUST 2017 – REVISED DECEMBER 2017
www.ti.com
Product Folder Links: LPV821
Submit Documentation Feedback
Copyright © 2017, Texas Instruments Incorporated
Device Functional Modes (continued)
8.4.2 Driving Capacitive Load
The LPV821 is internally compensated for stable unity-gain operation, with a 8-kHz typical gain bandwidth.
However, the unity-gain follower is the most sensitive configuration-to-capacitive load. The combination of a
capacitive load placed directly on the output of an amplifier along with the output impedance of the amplifier
creates a phase lag, which reduces the phase margin of the amplifier. If the phase margin is significantly
reduced, the response is under-damped, which causes peaking in the transfer and, when there is too much
peaking, the op amp might start oscillating.
Figure 38. Resistive Isolation of Capacitive Load
In order to drive heavy (> 50 pF) capacitive loads, use an isolation resistor, RISO, as shown in Figure 38. The
value of the RISO to be used should be decided depending on the size of the CLand the level of performance
desired. Recommended minimum values for RISO are given in the following table, for 3.3V supply. Figure 39
shows the typical response obtained with the CL = 50 pF RISO = 160 kΩ. By using the isolation resistor, the
capacitive load is isolated from the output of the amplifier. The larger the value of RISO, the more stable the
amplifier will be. If the value of RISO is sufficiently large, the feedback loop is stable, independent of the value of
CL. However, larger values of RISO (e.g. 50 kΩ) result in reduced output swing and reduced output current drive.
Table 1. Capacitive Loads vs. Needed Isolation Resistors
CL
RISO
0 – 20 pF
not needed
50 pF
160 k
Ω
100 pF
140 k
Ω
500 pF
54.9 k
Ω
1 nF
33 k
Ω
5 nF
15 k
Ω
10 nF
5.62 k
Ω
Figure 39. Typical Step Response



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