Texas Instruments_OPA4137UA

Texas Instruments
OPA4137UA  
OP Amps, Buffer Amps ICs

Texas Instruments
OPA4137UA
687-OPA4137UA
Ersa
Texas Instruments-OPA4137UA-datasheets-1546514.pdf
IC OPAMP JFET 4 CIRCUIT 14SOIC
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OPA4137UA Description

OPA4137UA Description

The OPA4137UA is a high-performance, low-noise, JFET-input operational amplifier from Texas Instruments, designed for precision signal processing in a wide range of applications. This quad op-amp features a MicroAmplifier™ series design, offering excellent performance in a compact 14SOIC package. The OPA4137UA is optimized for low supply current, making it ideal for battery-powered and portable devices. With a supply voltage range of 4.5 V to 36 V, it can operate in both single-supply and dual-supply configurations, providing flexibility for various power requirements.

OPA4137UA Features

  • Low Supply Current: The OPA4137UA operates with a supply current of only 220µA per amplifier, making it highly efficient for low-power applications.
  • Low Input Bias Current: With an input bias current of just 5 pA, the OPA4137UA minimizes the loading effect on high-impedance sources, ensuring high accuracy in precision measurements.
  • High Slew Rate: The 3.5V/µs slew rate ensures fast transient response, making the OPA4137UA suitable for applications requiring high-speed signal processing.
  • Wide Supply Voltage Range: The device can operate from a supply voltage as low as 4.5 V up to 36 V, providing compatibility with a wide range of power supplies.
  • Low Input Offset Voltage: The 1.5 mV input offset voltage ensures high accuracy in signal conditioning and amplification tasks.
  • High Output Current: Each channel can deliver up to 60 mA of output current, making it capable of driving moderate to high loads.
  • Compliance with Industry Standards: The OPA4137UA is REACH unaffected and RoHS3 compliant, ensuring environmental sustainability and regulatory compliance.
  • Moisture Sensitivity Level: With an MSL of 3 (168 hours), the OPA4137UA is suitable for surface-mount assembly processes, ensuring reliability in manufacturing environments.

OPA4137UA Applications

The OPA4137UA is ideal for a variety of applications where precision, low power consumption, and high performance are critical. Some specific use cases include:

  • Precision Signal Conditioning: The low input bias current and low input offset voltage make the OPA4137UA suitable for high-impedance sensor interfaces and precision signal conditioning circuits.
  • Battery-Powered Devices: The low supply current and wide supply voltage range make it an excellent choice for portable and battery-powered applications, such as handheld instruments and wearable devices.
  • High-Speed Signal Processing: The high slew rate and gain bandwidth product of 1 MHz ensure that the OPA4137UA can handle high-speed signals, making it suitable for applications like audio processing and data acquisition systems.
  • Industrial Control Systems: The robustness and compliance with industry standards make the OPA4137UA suitable for industrial control systems, where reliability and precision are paramount.

Conclusion of OPA4137UA

The OPA4137UA from Texas Instruments is a versatile and high-performance quad operational amplifier, offering a unique combination of low power consumption, high precision, and wide operating voltage range. Its low input bias current and low input offset voltage make it ideal for precision applications, while its high slew rate and gain bandwidth product ensure it can handle high-speed signals effectively. The OPA4137UA's compliance with environmental and regulatory standards further enhances its suitability for modern electronic designs. Whether in precision signal conditioning, portable devices, or high-speed processing applications, the OPA4137UA stands out as a reliable and efficient choice for engineers and designers in the electronics industry.

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)
Supplier Package
Package / Case
Typical Voltage Gain (dB)
REACH Status
Typical Input Bias Current (uA)
EU RoHS
Amplifier Type
Maximum Dual Supply Voltage (V)
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)
Typical Dual Supply Voltage (V)
Voltage - Supply Span (Min)
Lead Shape
SVHC
Manufacturer Type
HTSUS
Package
Current - Output / Channel
Minimum CMRR (dB)
Maximum Quiescent Current (mA)
PCB changed
Output Type
HTS
ECCN (US)
Supplier Device Package
Minimum CMRR Range (dB)
Minimum Operating Temperature (°C)
Maximum Operating Temperature (°C)
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
Minimum Dual Supply Voltage (V)
Voltage - Input Offset
Series
Type
Maximum Single Supply Voltage (V)
Part Status
Number of Circuits
Package Width
Typical Settling Time (ns)
Base Product Number
Maximum Dual Supply Voltage
Unit Weight
en - Input Voltage Noise Density
Vos - Input Offset Voltage
Voltage Gain dB
Dual Supply Voltage
Minimum Dual Supply Voltage
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
Moisture Sensitive
Vcm - Common Mode Voltage
Length
Operating Supply Voltage
Output Current per Channel
Supply Type
USHTS
GBP - Gain Bandwidth Product

OPA4137UA Documents

Download datasheets and manufacturer documentation for OPA4137UA

Ersa OPA137P      
Ersa EOL 22/May/2023      
Ersa Design 25/Feb/2022      

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