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OPA607 数据表(PDF) 9 Page - Texas Instruments

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部件名 OPA607
功能描述  OPAX607 50-MHz, Low-Power, Gain of 6-V/V Stable, Rail-to-Rail Output CMOS Operational Amplifier
PDF  28 Pages
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制造商  TI1 [Texas Instruments]
网页  http://www.ti.com
标志 TI1 - Texas Instruments

OPA607 数据表(HTML) 9 Page - Texas Instruments

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+
±
VIN
RO
CL
10 k
VOUT
OPA607
IOVERLOAD
10mA max
Rf
Rg
9
OPAX607
www.ti.com
SBOS981B – OCTOBER 2019 – REVISED FEBRUARY 2020
Product Folder Links: OPAX607
Submit Documentation Feedback
Copyright © 2019–2020, Texas Instruments Incorporated
Feature Description (continued)
8.3.2 Rail-to-Rail Output and Driving Capacitive Loads
Designed as a low-power, low-voltage operational amplifier, the OPAX607 delivers a robust output drive
capability. For resistive loads of 10 kΩ, the output swings to within a few millivolts of either supply rail, regardless
of the applied power-supply voltage. Different load conditions change the ability of the amplifier to swing close to
the rails. The OPAX607 drives up to a nominal capacitive load of 47 pF on the output with no special
consideration and without the need of a series isolation resistor RO while still being able to achieve 45º of phase
margin. When driving capacitive loads greater than 47 pF, TI recommends using RO as shown in Figure 1 in
series with the output as close to the device as possible. Without RO, the external capacitance (CL) interacts with
the output impedance (ZO) of the amplifier, resulting in stability issues. Inserting RO isolates CL from ZO and
restores the phase margin. Figure 1 shows the test circuit.
Figure 1. Input Current Protection and Driving Capacitive Loads
8.3.3 Input and ESD Protection
When the primary design goal is a linear amplifier with high CMRR, do not exceed the op amp input common-
mode voltage range (VCM). This CMRR is used to set the common-mode input range specifications in the
Electrical Characteristics table. The typical specifications for the OPAX607 are from the negative rail to 1.1 V
below the positive rail. Assuming the op amp is in linear operation, the voltage difference between the input pins
is small (ideally 0 V) and the input common-mode voltage can be analyzed at either input pin; the other input pin
is assumed to be at the same potential. The voltage at VIN+ is easy to evaluate. In a noninverting configuration
(Figure 1) the input signal, VIN+, must not exceed the VCM rating. However, in an inverting amplifier configuration,
VIN+ must be connected to the voltage within VCM. The input signal applied at VIN- can be any voltage, such that
the output voltage swings with a headroom of 10mV from either of the supply rails.
The input voltage limits have fixed headroom to the power rails and track the power-supply voltages. For single
5-V supply, the linear input voltage range is 0 V to 3.9 V and with a 2.2-V supply this range is 0 V to 1.1 V. The
headroom to each power-supply rail is the same in either case: 0 V and 1.1 V.
The OPAX607 also incorporates internal electrostatic discharge (ESD) protection circuits on all pins. For the
input and output pins, this protection primarily consists of current-steering diodes connected between the input
and power-supply pins. These ESD protection diodes also provide input overdrive protection, as long as the
current is limited with a series resistor to 10 mA, as stated in the Absolute Maximum Ratings table. Figure 1
shows a series input resistor can be added to the driven input to limit the input current. The series input resistor
also serves to cancel input offset voltage resulting from bias current, as detailed in the Device Functional Modes
section of the OPA2834 data sheet.



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