Category: Integrated Circuit (IC)
Use: The LMV842QMM/NOPB is a low-voltage, rail-to-rail output operational amplifier designed for general-purpose applications. It is commonly used in audio amplification, sensor signal conditioning, and other low-power precision applications.
Characteristics: - Low voltage operation: The LMV842QMM/NOPB operates from a single supply voltage as low as 1.8V, making it suitable for battery-powered devices. - Rail-to-rail output swing: It provides an output voltage range that extends close to the supply rails, allowing maximum utilization of the available dynamic range. - Low input offset voltage: The amplifier has a low input offset voltage, ensuring accurate signal amplification. - Low quiescent current: It consumes minimal power, making it ideal for low-power applications. - Small package size: The LMV842QMM/NOPB comes in a miniature 8-pin MSOP package, saving board space.
Package and Quantity: The LMV842QMM/NOPB is available in an 8-pin MSOP package. It is typically sold in reels or tubes containing multiple units.
The LMV842QMM/NOPB features the following pin configuration:
___________
V- | 1 8 | V+
IN-| 2 7 | OUT
IN+| 3 6 | NC
GND| 4 5 | NC
¯¯¯¯¯¯¯¯¯¯¯
Advantages: - Wide supply voltage range allows for flexibility in various applications. - Rail-to-rail output swing provides maximum utilization of dynamic range. - Low quiescent current makes it ideal for low-power applications. - Small package size saves board space.
Disadvantages: - Limited output current may not be suitable for high-power applications. - Input and output capacitance can affect stability in certain circuit configurations.
The LMV842QMM/NOPB is an operational amplifier that amplifies input signals with high precision. It operates by using a differential input stage followed by a gain stage. The differential input stage provides high common-mode rejection ratio (CMRR) and low input offset voltage. The gain stage amplifies the differential input signal and drives the output stage, which provides rail-to-rail output swing.
The LMV842QMM/NOPB can be used in various applications, including: - Audio amplification in portable devices such as smartphones and tablets. - Sensor signal conditioning in industrial automation and control systems. - Signal amplification in medical devices and instrumentation. - Voltage level shifting and buffering in communication systems.
These alternative models offer similar functionality and can be considered as substitutes for the LMV842QMM/NOPB in different applications.
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What is the maximum supply voltage for LMV842QMM/NOPB?
- The maximum supply voltage for LMV842QMM/NOPB is 5.5V.
What is the typical input offset voltage of LMV842QMM/NOPB?
- The typical input offset voltage of LMV842QMM/NOPB is 0.5mV.
Can LMV842QMM/NOPB be used in single-supply applications?
- Yes, LMV842QMM/NOPB can be used in single-supply applications.
What is the typical input bias current of LMV842QMM/NOPB?
- The typical input bias current of LMV842QMM/NOPB is 1pA.
Is LMV842QMM/NOPB suitable for low-power applications?
- Yes, LMV842QMM/NOPB is suitable for low-power applications with a quiescent current of 20µA per channel.
What is the maximum output current capability of LMV842QMM/NOPB?
- The maximum output current capability of LMV842QMM/NOPB is ±50mA.
Can LMV842QMM/NOPB operate at high temperatures?
- Yes, LMV842QMM/NOPB can operate at temperatures up to 125°C.
Does LMV842QMM/NOPB have built-in EMI filtering?
- Yes, LMV842QMM/NOPB has built-in EMI filtering for improved electromagnetic compatibility.
What is the typical gain bandwidth product of LMV842QMM/NOPB?
- The typical gain bandwidth product of LMV842QMM/NOPB is 10MHz.
Is LMV842QMM/NOPB suitable for precision instrumentation applications?
- Yes, LMV842QMM/NOPB is suitable for precision instrumentation applications due to its low input offset voltage and low input bias current.