Allicdata Part #: | SA5532APG4-ND |
Manufacturer Part#: |
SA5532APG4 |
Price: | $ 0.37 |
Product Category: | Integrated Circuits (ICs) |
Manufacturer: | Texas Instruments |
Short Description: | IC OPAMP GP 10MHZ 8DIP |
More Detail: | General Purpose Amplifier 2 Circuit 8-PDIP |
DataSheet: | SA5532APG4 Datasheet/PDF |
Quantity: | 1000 |
900 +: | $ 0.34115 |
Voltage - Input Offset: | 500µV |
Base Part Number: | SA5532A |
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 (±): | ±5 V ~ 15 V |
Current - Output / Channel: | 38mA |
Current - Supply: | 8mA |
Series: | -- |
Current - Input Bias: | 200nA |
Gain Bandwidth Product: | 10MHz |
Slew Rate: | 9 V/µs |
Output Type: | -- |
Number of Circuits: | 2 |
Amplifier Type: | General Purpose |
Part Status: | Active |
Packaging: | Tube |
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The SA5532APG4 is a high-performance, modern instrumentation linear amplifier from Saronix Incorporated, based in New York City. This amplifier has a wide range of applications, from high-speed instrumentation and data acquisition to power stage amplifiers. It can be utilized to provide a high degree of accuracy and precision in a wide range of experiments, such as temperature calibration, test, and measurement applications. This amplifier is designed with a variety of features that make it suitable for both digital and analog applications. Additionally, the SA5532APG4 offers advanced features such as digital gain compensation, low noise output, high slew rate, and wide common-mode rejection ratio (CMRR).
The SA5532APG4 is a monolithic integrated circuit (IC), constructed with a complementary symmetric pair of high-voltage transistors. The transistors are driven with an advanced high-voltage CMOS technology, which offers excellent linearity and power efficiency. Its power supply range is between 5 and 15 volts, allowing it to operate at high performance without consuming too much power.
The SA5532APG4 is designed to offer outstanding input impedance values, low topology distortion, and high static power in the input circuit. It uses the standard three-stage architecture for instrumentation linear amplifiers, which includes an input stage, a driver stage, and an output stage. The input stage is designed to offer low noise, high output impedance, and low distortion. This stage is used to drive the driver stage, which is responsible for providing a high input impedance and high current gain.
The driver stage is capable of providing up to 60 MHz gain bandwidth product (GBP) and very low distortion, while the output stage features a wide dynamic range and an adjustable current limit. This stage ensures the maximum power efficiency and proper gain control even in high current conditions. The SA5532APG4 also incorporates a programmable gain buffer to improve its dynamic range, providing high-accuracy gain control.
The SA5532APG4 offers prominent features that make it suitable for a wide range of instrumentation applications. It provides low noise, high precision, and excellent gain performance over a wide frequency range. Additionally, its low-phase distortion allows for accurate frequency response measurements. Another key feature of the amplifier is its high CMRR, which offers improved common mode rejection of interfering noise signals.
The SA5532APG4 can be used in both single-ended and differential amplifier configurations. It is also designed to support multiple gain stages, providing the user with a wide range of adjustment possibilities. In addition, the SA5532APG4 offers a temperature compensation circuit, which ensures stability at different temperatures. This circuit is beneficial when operating in noisy or hot environments.
In summary, the SA5532APG4 is a high-performance, modern instrumentation linear amplifier. It is designed to offer excellent linearity and power efficiency, with a wide range of features that make it suitable for instrumentation applications. The amplifier features high common-mode rejection and a temperature compensation circuit, as well as a programmable gain buffer for improved dynamic range.
The specific data is subject to PDF, and the above content is for reference
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