LM6134

ACTIVE

Quad, 24-V, 10-MHz, low-power operational amplifier

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OPA4992 ACTIVE Quad, 40-V, 10.6-MHz, rail-to-rail input/output, low-offset-voltage, low-noise op amp Wider supply range (2.7 V to 40 V), higher GBW (10.6 MHz), faster slew rate (32 V/us), lower offset voltage (1 mV), lower noise (7 nV/√Hz)

Product details

Number of channels 4 Total supply voltage (+5 V = 5, ±5 V = 10) (max) (V) 24 Total supply voltage (+5 V = 5, ±5 V = 10) (min) (V) 2.7 Rail-to-rail In, Out GBW (typ) (MHz) 10 Slew rate (typ) (V/µs) 14 Vos (offset voltage at 25°C) (max) (mV) 2 Iq per channel (typ) (mA) 0.36 Vn at 1 kHz (typ) (nV√Hz) 27 Rating Catalog Operating temperature range (°C) -40 to 85 Offset drift (typ) (µV/°C) 5 Input bias current (max) (pA) 140000 CMRR (typ) (dB) 107 Iout (typ) (A) 0.0043 Architecture Bipolar Input common mode headroom (to negative supply) (typ) (V) -0.25 Input common mode headroom (to positive supply) (typ) (V) 0.25 Output swing headroom (to negative supply) (typ) (V) 0.032 Output swing headroom (to positive supply) (typ) (V) -0.048
Number of channels 4 Total supply voltage (+5 V = 5, ±5 V = 10) (max) (V) 24 Total supply voltage (+5 V = 5, ±5 V = 10) (min) (V) 2.7 Rail-to-rail In, Out GBW (typ) (MHz) 10 Slew rate (typ) (V/µs) 14 Vos (offset voltage at 25°C) (max) (mV) 2 Iq per channel (typ) (mA) 0.36 Vn at 1 kHz (typ) (nV√Hz) 27 Rating Catalog Operating temperature range (°C) -40 to 85 Offset drift (typ) (µV/°C) 5 Input bias current (max) (pA) 140000 CMRR (typ) (dB) 107 Iout (typ) (A) 0.0043 Architecture Bipolar Input common mode headroom (to negative supply) (typ) (V) -0.25 Input common mode headroom (to positive supply) (typ) (V) 0.25 Output swing headroom (to negative supply) (typ) (V) 0.032 Output swing headroom (to positive supply) (typ) (V) -0.048
PDIP (N) 14 181.42 mm² 19.3 x 9.4 SOIC (D) 14 51.9 mm² 8.65 x 6
  • (For 5V Supply, Typ Unless Noted)
  • Rail-to-Rail Input CMVR −0.25 V to 5.25 V
  • Rail-to-Rail Output Swing 0.01V to 4.99V
  • High Gain-Bandwidth, 10 MHz at 20 kHz
  • Slew Rate 12 V/µs
  • Low Supply Current 360 µA/Amp
  • Wide Supply Range 2.7 V to over 24 V
  • CMRR 100 dB
  • Gain 100 dB with RL = 10 k
  • PSRR 82 dB
  • (For 5V Supply, Typ Unless Noted)
  • Rail-to-Rail Input CMVR −0.25 V to 5.25 V
  • Rail-to-Rail Output Swing 0.01V to 4.99V
  • High Gain-Bandwidth, 10 MHz at 20 kHz
  • Slew Rate 12 V/µs
  • Low Supply Current 360 µA/Amp
  • Wide Supply Range 2.7 V to over 24 V
  • CMRR 100 dB
  • Gain 100 dB with RL = 10 k
  • PSRR 82 dB

The LM6132/34 provides new levels of speed vs. power performance in applications where low voltage supplies or power limitations previously made compromise necessary. With only 360 µA/amp supply current, the 10 MHz gain-bandwidth of this device supports new portable applications where higher power devices unacceptably drain battery life.

The LM6132/34 can be driven by voltages that exceed both power supply rails, thus eliminating concerns over exceeding the common-mode voltage range. The rail-to-rail output swing capability provides the maximum possible dynamic range at the output. This is particularly important when operating on low supply voltages. The LM6132/34 can also drive large capacitive loads without oscillating.

Operating on supplies from 2.7 V to over 24 V, the LM6132/34 is excellent for a very wide range of applications, from battery operated systems with large bandwidth requirements to high speed instrumentation.

The LM6132/34 provides new levels of speed vs. power performance in applications where low voltage supplies or power limitations previously made compromise necessary. With only 360 µA/amp supply current, the 10 MHz gain-bandwidth of this device supports new portable applications where higher power devices unacceptably drain battery life.

The LM6132/34 can be driven by voltages that exceed both power supply rails, thus eliminating concerns over exceeding the common-mode voltage range. The rail-to-rail output swing capability provides the maximum possible dynamic range at the output. This is particularly important when operating on low supply voltages. The LM6132/34 can also drive large capacitive loads without oscillating.

Operating on supplies from 2.7 V to over 24 V, the LM6132/34 is excellent for a very wide range of applications, from battery operated systems with large bandwidth requirements to high speed instrumentation.

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Technical documentation

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Type Title Date
* Data sheet LM6132/LM6134 Dual and Quad Low Power 10 MHz Rail-to-Rail I/O Operational Amplifiers datasheet (Rev. E) PDF | HTML 05 Sep 2014
E-book The Signal e-book: A compendium of blog posts on op amp design topics 28 Mar 2017

Design & development

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Simulation model

LM6132 PSPICE Model

SNOM223.ZIP (3 KB) - PSpice Model
Calculation tool

ANALOG-ENGINEER-CALC — Analog engineer's calculator

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Design tool

CIRCUIT060015 — Adjustable reference voltage circuit

This circuit combines an inverting and non-inverting amplifier to make a reference voltage adjustable from the negative of the input voltage up to the input voltage. Gain can be added to increase the maximum negative reference level.
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CIRCUIT060074 — High-side current sensing with comparator circuit

This high-side, current sensing solution uses one comparator with a rail-to-rail input common mode range to create an over-current alert (OC-Alert) signal at the comparator output (COMP OUT) if the load current rises above 1 A. The OC-Alert signal in this implementation is active low. So when the (...)
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 (...)
Simulation tool

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 (...)
User guide: PDF
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PDIP (N) 14 View options
SOIC (D) 14 View options

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