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SOIC (D)
Integrated Circuits (ICs)

LMC6494BEM/NOPB

Obsolete
Texas Instruments

QUAD, 15.5-V, 1.5-MHZ OPERATIONAL AMPLIFIER

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SOIC (D)
Integrated Circuits (ICs)

LMC6494BEM/NOPB

Obsolete
Texas Instruments

QUAD, 15.5-V, 1.5-MHZ OPERATIONAL AMPLIFIER

Technical Specifications

Parameters and characteristics for this part

SpecificationLMC6494BEM/NOPB
Amplifier TypeCMOS
Current - Input Bias0.15 pA
Current - Output / Channel30 mA
Current - Supply2.6 mA
Gain Bandwidth Product1.5 MHz
Mounting TypeSurface Mount
Number of Circuits4
Operating Temperature [Max]125 ¯C
Operating Temperature [Min]-40 °C
Output TypeRail-to-Rail
Package / Case14-SOIC
Package / Case [x]0.154 in
Package / Case [y]3.9 mm
Slew Rate1.3 V/µs
Voltage - Input Offset110 çV
Voltage - Supply Span (Max) [Max]15.5 V
Voltage - Supply Span (Min) [Min]2.5 V

Pricing

Prices provided here are for design reference only. For realtime values and availability, please visit the distributors directly

DistributorPackageQuantity$
DigikeyTube 1$ 8.41
10$ 5.78
25$ 5.10
100$ 4.34
250$ 3.98
500$ 3.75
1000$ 3.57
Texas InstrumentsTUBE 1$ 5.05
100$ 4.12
250$ 3.24
1000$ 2.75

Description

General part information

LMC6494 Series

The LMC6492 and LMC6494 (LMC649x) amplifiers were specifically developed for single-supply applications that operate from −40°C to +125°C. This feature is an excellent choice for automotive systems because of the wide temperature range. A unique design topology enables the LMC649x common-mode voltage range to accommodate input signals beyond the rails. This eliminates non-linear output errors due to input signals exceeding a traditionally limited common-mode voltage range. The LMC649x signal range has a high CMRR of 82dB for excellent accuracy in noninverting circuit configurations.

The LMC649x rail-to-rail input is complemented by rail-to-rail output swing. This configuration provides maximum dynamic signal range and is particularly important in 5V systems.

An ultra-low input current of 150fA and a 120dB open-loop gain provide high accuracy and direct interfacing with high-impedance sources.