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OPA4328
  • OPA4328
  • OPA4328

OPA4328

ACTIVE

Quad-channel, precision, 50µV offset voltage, 40MHz wide-bandwidth RRIO CMOS operational amplifier

Texas Instruments OPA4328 Product Info

1 April 2026 0

Parameters

Number of channels

4

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

5.5

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

2.2

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

0.05

Offset drift (typ) (µV/°C)

0.15

Input bias current (max) (pA)

1

GBW (typ) (MHz)

40

Features

EMI Hardened, Zero Crossover, e-Trim™

Slew rate (typ) (V/µs)

30

Rail-to-rail

In, Out

Iq per channel (typ) (mA)

3.8

Vn at 1 kHz (typ) (nV√Hz)

9.8

CMRR (typ) (dB)

120

Rating

Catalog

Operating temperature range (°C)

-40 to 125

Iout (typ) (A)

0.065

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)

0.005

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

0.005

THD + N at 1 kHz (typ) (%)

0.0001

Package

TSSOP (PW)-14-32 mm² 5 x 6.4

Features

  • Precision with zero-crossover distortion:
    • Low offset voltage: 50µV (maximum)
    • High CMRR: 120dB
    • Rail-to-rail I/O
  • Wide bandwidth: 40MHz
  • Low input bias current: 1pA (maximum)
  • Low noise: 6.1nV/√Hz at 10kHz
  • Slew rate: 30V/µs
  • Fast 0.01% settling time: 180ns
  • Single-supply voltage range: 2.2V to 5.5V
  • Unity-gain stable
  • Precision with zero-crossover distortion:
    • Low offset voltage: 50µV (maximum)
    • High CMRR: 120dB
    • Rail-to-rail I/O
  • Wide bandwidth: 40MHz
  • Low input bias current: 1pA (maximum)
  • Low noise: 6.1nV/√Hz at 10kHz
  • Slew rate: 30V/µs
  • Fast 0.01% settling time: 180ns
  • Single-supply voltage range: 2.2V to 5.5V
  • Unity-gain stable

Description

The single-channel OPA328, dual-channel OPA2328 and quad-channel OPA4328 (OPAx328) are a new generation family of precision, low-voltage CMOS operational amplifiers optimized for very low noise and wide bandwidth.

The OPAx328 have a linear input stage with zero-crossover distortion that delivers excellent common-mode rejection ratio (CMRR) of 120dB (typical) over the full input range. The input common-mode voltage range extends 100mV beyond the negative and positive supply rails. The output voltage typically swings within 10mV of the rails.

The OPAx328 also use Texas Instrument’s proprietary e‑trim™ operational amplifier technology, enabling a unique combination of ultra-low offset and low input offset drift without the need for any input switching or auto-zero techniques.

Low-noise (6.1nV/√Hz) and high-speed operation (40MHz, 30V/µs) make these devices a great choice for driving sampling analog-to-digital converters (ADCs).

The OPAx328 are also a great choice for high-impedance-input, single-supply applications. Low input bias current and low input capacitance allows for high-frequency transimpedance gains at low photocurrent operation (< 1nA).

The single-channel OPA328, dual-channel OPA2328 and quad-channel OPA4328 (OPAx328) are a new generation family of precision, low-voltage CMOS operational amplifiers optimized for very low noise and wide bandwidth.

The OPAx328 have a linear input stage with zero-crossover distortion that delivers excellent common-mode rejection ratio (CMRR) of 120dB (typical) over the full input range. The input common-mode voltage range extends 100mV beyond the negative and positive supply rails. The output voltage typically swings within 10mV of the rails.

The OPAx328 also use Texas Instrument’s proprietary e‑trim™ operational amplifier technology, enabling a unique combination of ultra-low offset and low input offset drift without the need for any input switching or auto-zero techniques.

Low-noise (6.1nV/√Hz) and high-speed operation (40MHz, 30V/µs) make these devices a great choice for driving sampling analog-to-digital converters (ADCs).

The OPAx328 are also a great choice for high-impedance-input, single-supply applications. Low input bias current and low input capacitance allows for high-frequency transimpedance gains at low photocurrent operation (< 1nA).

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