OP97FPZ Allicdata Electronics
Allicdata Part #:

OP97FPZ-ND

Manufacturer Part#:

OP97FPZ

Price: $ 0.00
Product Category:

Integrated Circuits (ICs)

Manufacturer: Analog Devices Inc.
Short Description: IC OPAMP GP 900KHZ 8DIP
More Detail: General Purpose Amplifier 1 Circuit 8-PDIP
DataSheet: OP97FPZ datasheetOP97FPZ Datasheet/PDF
Quantity: 488
Stock 488Can Ship Immediately
Specifications
Current - Input Bias: 30pA
Base Part Number: OP97
Supplier Device Package: 8-PDIP
Package / Case: 8-DIP (0.300", 7.62mm)
Mounting Type: Through Hole
Operating Temperature: -40°C ~ 85°C
Voltage - Supply, Single/Dual (±): ±2 V ~ 20 V
Current - Supply: 380µA
Voltage - Input Offset: 30µV
Series: --
-3db Bandwidth: 900kHz
Slew Rate: 0.2 V/µs
Output Type: --
Number of Circuits: 1
Amplifier Type: General Purpose
Part Status: Active
Packaging: Tube 
Description

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OP97FPZ is a type of instrumentation amplifier, specifically a low noise, high-precision, precision-amplifier designed to measure small, low level signals with accuracy and low noise. It is designed to be used in laboratory, medical, industrial and other applications. The OP97FPZ also features a wide frequency range and high common mode rejection ratio (CMRR).

Instrumentation amplifiers are commonly used in applications where low level signals need to be amplified with minimum noise and distortion. They are primarily used in the biomedical industry for measuring blood pressure, ECG, EEG and other physiological signals. They are also used for measuring temperature, pressure, light and other physical parameters. Additionally, many instrumentation amplifiers feature a differential input impedance and high common mode rejection ratio, which make it ideal for use in high accuracy, low-noise measurement systems.

The OP97FPZ is a low noise, high-precision instrumentation amplifier featuring a wide frequency range, a differential input impedance, and a high common mode rejection ratio (CMRR). The amplifier features a low-noise gain of 200 mV/V, a wide bandwidth of 50 kHz, and low power consumption of 4.5V. The OP97FPZ also features a high input impedance of 10 GΩ, which makes it suitable for use in low-impedance differential signals such as ECG signals, EEG signals and temperature sensors.The OP97FPZ is designed to be used in a variety of applications such as medical instrumentation, high-precision measurement systems, and industrial automation. It is ideal for a number of applications, including signal conditioning for Bio-medical systems, physiological monitoring, laboratory monitoring and industrial control systems.The working principle of the OP97FPZ is based on a differential amplifier configuration. The amplifier consists of two differential amplifiers with the same gain, each of which has an inverting input and a noninverting input. The differential inputs of the amplifier are connected to the low noise input signal sources. The amplifier amplifies the differences between the inputs and provides the amplified output signal to the output pins. The amplifier also features a feedback loop which ensures a high level of accuracy and stability of the amplifier.The output of the OP97FPZ is buffered with two separate output buffers, one for positive and the other for negative outputs, providing low output impedance and a high output current capability. The output buffer also ensures that the output voltage remains constant even if the load is changed.The OP97FPZ is widely used in various applications due to its low noise performance and wide frequency range. It is especially suitable for use in sensitive measuring systems, such as biomedical instrumentation, high-precision measurement systems, and industrial control systems. The amplifier is also widely used in medical instrumentation as it is designed to provide highly accurate and low-noise measurements.In conclusion, the OP97FPZ is a low noise, high-precision amplifier designed to measure small, low level signals with accuracy and low noise. It is designed to be used in laboratory, medical, industrial and other applications. It features a wide frequency range and high common mode rejection ratio (CMRR), making it ideal for use in high accuracy, low-noise measurement systems.

The specific data is subject to PDF, and the above content is for reference

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