Texas Instruments_LMV344MAX/NOPB

Texas Instruments
LMV344MAX/NOPB  
OP Amps, Buffer Amps ICs

Texas Instruments
LMV344MAX/NOPB
687-LMV344MAX/NOPB
Ersa
Texas Instruments-LMV344MAX/NOPB-datasheets-5635467.pdf
IC CMOS 4 CIRCUIT 14SOIC
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LMV344MAX/NOPB Description

LMV344MAX/NOPB Description

The LMV344MAX/NOPB is a high-performance CMOS operational amplifier from Texas Instruments, designed to meet the stringent demands of modern electronic systems. This quad-channel amplifier operates within a wide supply voltage range of 2.7 V to 5.5 V, making it suitable for a variety of applications that require flexibility in power supply design. Each channel of the LMV344MAX/NOPB can deliver up to 113 mA of output current, ensuring robust performance even under heavy load conditions.

LMV344MAX/NOPB Features

  • Wide Supply Voltage Range: The LMV344MAX/NOPB operates from 2.7 V to 5.5 V, providing compatibility with both low-voltage and standard power supplies.
  • Low Input Bias Current: With an input bias current of just 0.02 pA, this amplifier minimizes the impact of input current on sensitive circuits, ensuring high accuracy and stability.
  • High Gain Bandwidth Product: A gain bandwidth product of 1 MHz ensures that the LMV344MAX/NOPB can handle high-frequency signals with minimal distortion, making it ideal for precision signal processing applications.
  • Fast Slew Rate: The 1 V/µs slew rate allows for rapid response to input signal changes, reducing settling time and improving overall system performance.
  • Low Input Offset Voltage: The 700 µV input offset voltage ensures high accuracy and linearity, making this amplifier suitable for precision measurement and control applications.
  • Low Power Consumption: The LMV344MAX/NOPB consumes only 107 µA of supply current per channel, making it an energy-efficient choice for battery-powered and low-power applications.
  • Surface Mount Packaging: The 14SOIC package is ideal for surface mount applications, providing a compact and reliable solution for space-constrained designs.
  • Compliance and Reliability: The LMV344MAX/NOPB is REACH unaffected and ROHS3 compliant, ensuring environmental sustainability and regulatory compliance. It also has a moisture sensitivity level (MSL) of 1, making it suitable for a wide range of manufacturing environments.

LMV344MAX/NOPB Applications

The LMV344MAX/NOPB is versatile and can be used in a variety of applications, including:

  • Signal Conditioning: Ideal for conditioning and amplifying low-level signals in sensor interfaces, ensuring high accuracy and stability.
  • Analog-to-Digital Conversion: The low input offset voltage and high gain bandwidth product make it suitable for driving analog-to-digital converters (ADCs) in precision measurement systems.
  • Power Management: The low power consumption and wide supply voltage range make it an excellent choice for power management circuits in portable and battery-powered devices.
  • Audio Processing: The high slew rate and low distortion characteristics ensure high-fidelity audio signal processing in consumer electronics.
  • Industrial Control Systems: The robust performance and wide operating voltage range make it suitable for industrial control systems that require high reliability and precision.

Conclusion of LMV344MAX/NOPB

The LMV344MAX/NOPB from Texas Instruments is a high-performance CMOS operational amplifier that offers a unique combination of wide supply voltage range, low power consumption, and high accuracy. Its low input bias current, high gain bandwidth product, and fast slew rate make it an ideal choice for precision signal processing and power management applications. The LMV344MAX/NOPB's compliance with environmental and regulatory standards, along with its surface mount packaging, ensures that it is a reliable and sustainable choice for modern electronic designs. Whether used in signal conditioning, analog-to-digital conversion, or industrial control systems, the LMV344MAX/NOPB delivers exceptional performance and reliability, making it a standout choice in the operational amplifier market.

Tech Specifications

Voltage - Supply Span (Max)
Number of Channels per Chip
Power Supply Type
Maximum Input Offset Voltage (mV)
PPAP
Gain Bandwidth Product
Product Status
Current - Input Bias
Automotive
Maximum Input Offset Current (uA)
Rail to Rail
Supplier Package
Package / Case
Typical Voltage Gain (dB)
REACH Status
EU RoHS
Amplifier Type
Moisture Sensitivity Level (MSL)
Typical Input Noise Voltage Density (nV/rtHz)
Operating Temperature
Typical Slew Rate (V/us)
ECCN
Mounting Type
Current - Supply
Standard Package Name
Pin Count
Shut Down Support
Mounting
Minimum Single Supply Voltage (V)
Minimum PSRR (dB)
Voltage - Supply Span (Min)
Lead Shape
Manufacturer Type
HTSUS
Package
Current - Output / Channel
Minimum CMRR (dB)
PCB changed
Output Type
HTS
ECCN (US)
Supplier Device Package
Minimum CMRR Range (dB)
Minimum Operating Temperature (°C)
Maximum Operating Temperature (°C)
Process Technology
Typical Gain Bandwidth Product (MHz)
Package Height
Mfr
RoHS Status
Maximum Input Bias Current (uA)
Typical Noninverting Input Current Noise Density (pA/rtHz)
Slew Rate
Package Length
Maximum Supply Current (mA)
Voltage - Input Offset
Series
Type
Maximum Single Supply Voltage (V)
Part Status
Number of Circuits
Package Width
Base Product Number
Unit Weight
en - Input Voltage Noise Density
Vos - Input Offset Voltage
Voltage Gain dB
Product
RoHS
Supply Voltage - Min
Operating Supply Current
SR - Slew Rate
Number of Channels
Technology
Height
Maximum Operating Temperature
Ib - Input Bias Current
Supply Voltage - Max
Width
Mounting Style
Input Type
PSRR - Power Supply Rejection Ratio
Minimum Operating Temperature
CMRR - Common Mode Rejection Ratio
In - Input Noise Current Density
Shutdown
Length
Operating Supply Voltage
Output Current per Channel
Supply Type
USHTS
GBP - Gain Bandwidth Product

LMV344MAX/NOPB Documents

Download datasheets and manufacturer documentation for LMV344MAX/NOPB

Ersa Wafer Metal Update 30/Nov/2016      
Ersa LMV341,42,44      
Ersa LMV341,42,44      
Ersa SOIC Pkg Wire Bonding 20/Mar/2013      

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