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OPA2333-HT
  • OPA2333-HT
  • OPA2333-HT
  • OPA2333-HT
  • OPA2333-HT
  • OPA2333-HT

OPA2333-HT

ACTIVE

High-temperature, 1.8-V, 17-µA, two-channel, micropower zero-drift CMOS operational amplifier

Texas Instruments OPA2333-HT Product Info

1 April 2026 0

Parameters

Number of channels

2

Total supply voltage (+5 V = 5, ±5 V = 10) (max) (V)

5.5

Total supply voltage (+5 V = 5, ±5 V = 10) (min) (V)

1.8

Vos (offset voltage at 25°C) (max) (mV)

0.01

Offset drift (typ) (µV/°C)

0.02

Input bias current (max) (pA)

200

GBW (typ) (MHz)

0.35

Features

EMI Hardened, Zero Drift

Slew rate (typ) (V/µs)

0.16

Rail-to-rail

In, Out

Iq per channel (typ) (mA)

0.017

Vn at 1 kHz (typ) (nV√Hz)

55

CMRR (typ) (dB)

130

Rating

High Temp

Operating temperature range (°C)

-55 to 210

Iout (typ) (A)

0.005

Architecture

CMOS

Input common mode headroom (to negative supply) (typ) (V)

-0.1

Input common mode headroom (to positive supply) (typ) (V)

0.1

Output swing headroom (to negative supply) (typ) (V)

0.03

Output swing headroom (to positive supply) (typ) (V)

-0.03

Package

B0QFN (JD)-8-75.8373 mm² 10.29 x 7.37

Features

  • Low Offset Voltage: 26 µV (Maximum)
  • 0.01-Hz to 10-Hz Noise: 1.5 µVPP
  • Quiescent Current: 50 µA
  • Single-Supply Operation
  • Supply Voltage: 1.8 V to 5.5 V
  • Rail-to-Rail Input and Output
  • Supports Extreme Temperature Applications
  • Controlled Baseline
  • One Assembly/Test Site
  • One Fabrication Site
  • Available in Extreme (–55°C to 210°C)
    Temperature Range(1)
  • Extended Product Life Cycle
  • Extended Product-Change Notification
  • Product Traceability
  • Texas Instruments’ high temperature products use
    highly optimized silicon (die) solutions with design
    and process enhancements to maximize
    performance over extended temperatures.
  • Low Offset Voltage: 26 µV (Maximum)
  • 0.01-Hz to 10-Hz Noise: 1.5 µVPP
  • Quiescent Current: 50 µA
  • Single-Supply Operation
  • Supply Voltage: 1.8 V to 5.5 V
  • Rail-to-Rail Input and Output
  • Supports Extreme Temperature Applications
  • Controlled Baseline
  • One Assembly/Test Site
  • One Fabrication Site
  • Available in Extreme (–55°C to 210°C)
    Temperature Range(1)
  • Extended Product Life Cycle
  • Extended Product-Change Notification
  • Product Traceability
  • Texas Instruments’ high temperature products use
    highly optimized silicon (die) solutions with design
    and process enhancements to maximize
    performance over extended temperatures.

Description

The OPA2333 series of CMOS operational amplifiers uses a proprietary auto-calibration technique to simultaneously provide very low offset voltage and near-zero drift over time and temperature(1). These miniature, high-precision, low-quiescent-current amplifiers offer high-impedance inputs that have a common-mode range 100 mV beyond the rails, and rail-to-rail output that swings within 150 mV of the rails. Single or dual supplies as low as 1.8 V (±0.9 V) and up to 5.5 V (±2.75 V) may be used. They are optimized for low-voltage single-supply operation.

The OPA2333 offers excellent common-mode rejection ratio (CMRR) without the crossover associated with traditional complementary input stages. This design results in superior performance for driving analog-to-digital converters (ADCs) without degradation of differential linearity.

The OPA2333 series of CMOS operational amplifiers uses a proprietary auto-calibration technique to simultaneously provide very low offset voltage and near-zero drift over time and temperature(1). These miniature, high-precision, low-quiescent-current amplifiers offer high-impedance inputs that have a common-mode range 100 mV beyond the rails, and rail-to-rail output that swings within 150 mV of the rails. Single or dual supplies as low as 1.8 V (±0.9 V) and up to 5.5 V (±2.75 V) may be used. They are optimized for low-voltage single-supply operation.

The OPA2333 offers excellent common-mode rejection ratio (CMRR) without the crossover associated with traditional complementary input stages. This design results in superior performance for driving analog-to-digital converters (ADCs) without degradation of differential linearity.

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