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OPA196IDBVR
+StücklisteIC OPAMP GP 1 CIRCUIT SOT23-5
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HerstellerTexas Instruments
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Herstellerteil #OPA196IDBVR
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Paket SOT-23-5
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Auf Lager6627
365 Tage Qualitätsgarantie
7*24 Stunden-Servicegarantie
90-Tage Kundendienstgarantie
Originalproduktgarantie
Spezifikationen
| Attribut | Wert |
| Package / Case | Tape & Reel (TR),Cut Tape (CT) |
| Part Status | Active |
| Amplifier Type | General Purpose |
| Number of Circuits | 1 |
| Output Type | Rail-to-Rail |
| Slew Rate | 7V/µs |
| Gain Bandwidth Product | 2.5 MHz |
| Current - Input Bias | 20 pA |
| Voltage - Input Offset | 100 µV |
| Supply Current | 140µA |
| Voltage - Supply Span(Min) | 4.5 V |
| Voltage - Supply Span(Max) | 36 V |
| Operating Temperature | -40°C ~ 125°C |
| Mounting Type | Surface Mount |
Übersicht
Description
With a low input bias current and wide bandwidth, the OPA196IDBVR is well-suited for use in sensor signal conditioning, data acquisition systems, and active filters. The device is also known for its high output drive capability and low distortion, which are essential in audio and high-fidelity applications.
Packaged in a small SOT-23-5 package, the OPA196IDBVR is ideal for space-constrained designs. It operates over a wide temperature range, typically from -40°C to +125°C, making it suitable for various industrial and automotive environments. Overall, the OPA196IDBVR offers high precision and reliability, making it a versatile choice for designers seeking robust performance.
Equivalent
1. Analog Devices ADA4077-1
2. Maxim Integrated (now part of Analog Devices) MAX9617
3. Microchip Technology MCP6V51
These alternatives offer similar specifications in terms of low noise, low offset voltage, and rail-to-rail input/output capabilities. Always check the detailed datasheets to ensure full compatibility with your application requirements.
Features
1. Low Offset Voltage: It has a low offset voltage, typically around 25 µV, which ensures high precision in applications.
2. Wide Supply Range: It operates over a wide supply voltage range from 4.5V to 36V, making it versatile for various applications.
3. Rail-to-Rail Output: The amplifier offers rail-to-rail output swing, maximizing dynamic range and allowing for better use of the supply voltage.
4. Low Noise: It features low noise, approximately 5.3 nV/√Hz at 1kHz, which is suitable for low-noise applications.
5. Low Quiescent Current: The device consumes low quiescent current, about 225 µA per amplifier, aiding in power-sensitive designs.
6. High Open-Loop Gain: It provides a high open-loop gain, typically 130 dB, contributing to its precision.
7. Temperature Range: The operational temperature range is from –40°C to 125°C, suitable for industrial environments.
These features make the OPA196IDBVR ideal for precision instrumentation, sensor signal conditioning, and other applications requiring high accuracy and low power consumption.
Pinout
1. Pin 1 (OUT): Output - This is the output pin of the operational amplifier where the amplified signal is available.
2. Pin 2 (V- or GND): Negative Supply Voltage or Ground - This pin is connected to the negative power supply or ground, depending on the configuration.
3. Pin 3 (IN+): Non-inverting Input - This is the positive input terminal of the op-amp, where the input signal is applied.
4. Pin 4 (IN-): Inverting Input - This is the negative input terminal of the op-amp, where another input signal can be applied for differential amplification.
5. Pin 5 (V+): Positive Supply Voltage - This pin is connected to the positive power supply.
The OPA196IDBVR is designed for precision applications, offering low noise, low offset voltage, and high bandwidth, making it suitable for a variety of applications including sensor signal conditioning and active filtering.
Manufacturer
Application
1. Instrumentation and Measurement Systems: Its precision features make it ideal for accurate data acquisition and sensor signal conditioning.
2. Industrial Automation: Used in control systems for its reliability and precision.
3. Medical Devices: Suitable for imaging and diagnostic equipment due to its low noise performance.
4. Automotive Systems: Used in sensor interfaces and electronic control units.
5. Consumer Electronics: Employed in audio equipment and other precision signal processing tasks.
Its versatility makes it a reliable choice for designs requiring high performance and accuracy.