OPA2357

ACTIVE

250MHz, Rail-to-Rail I/O, Dual CMOS Operational Amplifier w/Shutdown

Product details

Architecture FET / CMOS Input, Voltage FB Number of channels 2 Total supply voltage (+5 V = 5, ±5 V = 10) (min) (V) 2.7 Total supply voltage (+5 V = 5, ±5 V = 10) (max) (V) 5.5 GBW (typ) (MHz) 100 BW at Acl (MHz) 250 Acl, min spec gain (V/V) 1 Slew rate (typ) (V/µs) 150 Vn at flatband (typ) (nV√Hz) 6.5 Vn at 1 kHz (typ) (nV√Hz) 6.5 Iq per channel (typ) (mA) 4.9 Vos (offset voltage at 25°C) (max) (mV) 8 Rail-to-rail In, Out Features Shutdown Rating Catalog Operating temperature range (°C) -40 to 125 CMRR (typ) (dB) 68 Input bias current (max) (pA) 50 Offset drift (typ) (µV/°C) 4 Iout (typ) (mA) 100 2nd harmonic (dBc) 75 3rd harmonic (dBc) 83 Frequency of harmonic distortion measurement (MHz) 1
Architecture FET / CMOS Input, Voltage FB Number of channels 2 Total supply voltage (+5 V = 5, ±5 V = 10) (min) (V) 2.7 Total supply voltage (+5 V = 5, ±5 V = 10) (max) (V) 5.5 GBW (typ) (MHz) 100 BW at Acl (MHz) 250 Acl, min spec gain (V/V) 1 Slew rate (typ) (V/µs) 150 Vn at flatband (typ) (nV√Hz) 6.5 Vn at 1 kHz (typ) (nV√Hz) 6.5 Iq per channel (typ) (mA) 4.9 Vos (offset voltage at 25°C) (max) (mV) 8 Rail-to-rail In, Out Features Shutdown Rating Catalog Operating temperature range (°C) -40 to 125 CMRR (typ) (dB) 68 Input bias current (max) (pA) 50 Offset drift (typ) (µV/°C) 4 Iout (typ) (mA) 100 2nd harmonic (dBc) 75 3rd harmonic (dBc) 83 Frequency of harmonic distortion measurement (MHz) 1
VSSOP (DGS) 10 14.7 mm² 3 x 4.9
  • Unity-Gain Bandwidth: 250 MHz
  • Wide Bandwidth: 100-MHz GBW
  • High Slew Rate: 150 V/µs
  • Low Noise: 6.5 nV/√Hz
  • Rail-to-Rail I/O
  • High Output Current: > 100 mA
  • Excellent Video Performance:
    • Differential Gain: 0.02%, Differential Phase: 0.09°
    • 0.1-dB Gain Flatness: 40 MHz
  • Low Input Bias Current: 3 pA
  • Quiescent Current: 4.9 mA
  • Thermal Shutdown
  • Supply Range: 2.5 V to 5.5 V
  • Shutdown IQ < 6 µA
  • MicroSIZE Package
  • Create a Custom Design Using the OPA357 With the WEBENCH® Power Designer
  • Unity-Gain Bandwidth: 250 MHz
  • Wide Bandwidth: 100-MHz GBW
  • High Slew Rate: 150 V/µs
  • Low Noise: 6.5 nV/√Hz
  • Rail-to-Rail I/O
  • High Output Current: > 100 mA
  • Excellent Video Performance:
    • Differential Gain: 0.02%, Differential Phase: 0.09°
    • 0.1-dB Gain Flatness: 40 MHz
  • Low Input Bias Current: 3 pA
  • Quiescent Current: 4.9 mA
  • Thermal Shutdown
  • Supply Range: 2.5 V to 5.5 V
  • Shutdown IQ < 6 µA
  • MicroSIZE Package
  • Create a Custom Design Using the OPA357 With the WEBENCH® Power Designer

The OPA357 series of high-speed, voltage-feedback CMOS operational amplifiers is designed for video and other applications requiring wide bandwidth. These devices are unity-gain stable and can drive large output currents. Differential gain is 0.02% and differential phase is 0.09°. Quiescent current is only 4.9 mA per channel.

The OPA357 series of op amps is optimized for operation on single or dual supplies as low as 2.5 V (±1.25 V) and up to 5.5 V (±2.75 V). Common-mode input range extends beyond the supplies. The output swing is within 100 mV of the rails, supporting wide dynamic range.

The single version (OPA357) comes in the miniature SOT23-6 package. The dual version (OPA2357) is offered in the VSSOP-10 package.

The dual version features completely independent circuitry for lowest crosstalk and freedom from interaction. Both versions are specified over the extended –40°C to +125°C temperature range.









The OPA357 series of high-speed, voltage-feedback CMOS operational amplifiers is designed for video and other applications requiring wide bandwidth. These devices are unity-gain stable and can drive large output currents. Differential gain is 0.02% and differential phase is 0.09°. Quiescent current is only 4.9 mA per channel.

The OPA357 series of op amps is optimized for operation on single or dual supplies as low as 2.5 V (±1.25 V) and up to 5.5 V (±2.75 V). Common-mode input range extends beyond the supplies. The output swing is within 100 mV of the rails, supporting wide dynamic range.

The single version (OPA357) comes in the miniature SOT23-6 package. The dual version (OPA2357) is offered in the VSSOP-10 package.

The dual version features completely independent circuitry for lowest crosstalk and freedom from interaction. Both versions are specified over the extended –40°C to +125°C temperature range.









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Technical documentation

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* Data sheet OPAx357 250-MHz, Rail-to-Rail I/O, CMOS Operational Amplifier With Shutdown datasheet (Rev. F) PDF | HTML 11 Apr 2018
E-book The Signal e-book: A compendium of blog posts on op amp design topics 28 Mar 2017
Application note Design of Analog Interface for Ultrasonic Gas Flow Meter Sensors (Rev. A) 27 Mar 2016
Application note OPA357, OPA2357 EMI Immunity Performance (Rev. A) 02 Nov 2012

Design & development

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Simulation model

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SBOM651.ZIP (36 KB) - PSpice Model
Simulation model

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SBOM653.TSC (86 KB) - TINA-TI Reference Design
Simulation model

OPA2357 TINA-TI Spice Model

SBOM652.ZIP (6 KB) - TINA-TI Spice Model
Calculation tool

ANALOG-ENGINEER-CALC PC software analog engineer's calculator

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Calculation tool

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The voltage divider calculation tool (VOLT-DIVIDER-CALC) quickly determines a set of resistors for a voltage divider. This KnowledgeBase JavaScript utility can be used to find a set of resistors for a voltage divider to achieve the desired output voltage. VOLT-DIVIDER-CALC can also be used to (...)
Simulation tool

PSPICE-FOR-TI — PSpice® for TI design and simulation tool

PSpice® for TI is a design and simulation environment that helps evaluate functionality of analog circuits. This full-featured, design and simulation suite uses an analog analysis engine from Cadence®. Available at no cost, PSpice for TI includes one of the largest model libraries in the (...)
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TINA-TI — SPICE-based analog simulation program

TINA-TI provides all the conventional DC, transient and frequency domain analysis of SPICE and much more. TINA has extensive post-processing capability that allows you to format results the way you want them. Virtual instruments allow you to select input waveforms and probe circuit nodes voltages (...)
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