Zenode.ai Logo
Beta
14-TSSOP
Integrated Circuits (ICs)

OPA1654AIPW

Active
Texas Instruments

QUAD SOUND PLUS LOW NOISE AND DISTORTION, GENERAL-PURPOSE, FET-INPUT AUDIO OP AMPS

Deep-Dive with AI

Search across all available documentation for this part.

14-TSSOP
Integrated Circuits (ICs)

OPA1654AIPW

Active
Texas Instruments

QUAD SOUND PLUS LOW NOISE AND DISTORTION, GENERAL-PURPOSE, FET-INPUT AUDIO OP AMPS

Technical Specifications

Parameters and characteristics for this part

SpecificationOPA1654AIPW
Amplifier TypeAudio
Current - Input Bias10 pA
Current - Output / Channel50 mA
Current - Supply2 mA
Gain Bandwidth Product18 MHz
Mounting TypeSurface Mount
Number of Circuits4
Operating Temperature [Max]85 °C
Operating Temperature [Min]-40 °C
Output TypeRail-to-Rail
Package / Case14-TSSOP
Package / Case [custom]0.173 "
Package / Case [custom]4.4 mm
Slew Rate10 V/çs
Supplier Device Package14-TSSOP
Voltage - Input Offset500 çV
Voltage - Supply Span (Max) [Max]36 V
Voltage - Supply Span (Min) [Min]4.5 V

Pricing

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

DistributorPackageQuantity$
DigikeyTube 1$ 4.05
10$ 2.69
25$ 2.34
100$ 1.95
250$ 1.75
500$ 1.64
1000$ 1.61
Texas InstrumentsTUBE 1$ 2.61
100$ 2.28
250$ 1.60
1000$ 1.29

Description

General part information

OPA1654 Series

The OPA1652 (dual) and OPA1654 (quad) FET-input operational amplifiers achieve a low 4.5-nV/√Hznoise density with an ultra-low distortion of 0.00005% at 1 kHz. The OPA1652 and OPA1654 op amps offer rail-to-rail output swing to within 800 mV with a 2-kΩ load, which increases headroom and maximizes dynamic range. These devices also have a high output drive capability of ±30 mA.

These devices operate over a very-wide-supply range of ±2.25 V to ±18 V, or 4.5 V to 36 V, on only 2 mA of supply current per channel. The OPA1652 and OPA1654 op amps are unity-gain stable and provide excellent dynamic behavior over a wide range of load conditions.

These devices also feature completely independent circuitry for lowest crosstalk and freedom from interactions between channels, even when overdriven or overloaded.