Allicdata Part #: | MAX436CSD+-ND |
Manufacturer Part#: |
MAX436CSD+ |
Price: | $ 0.00 |
Product Category: | Integrated Circuits (ICs) |
Manufacturer: | Maxim Integrated |
Short Description: | IC OPAMP TRANSCOND 200MHZ 14SOIC |
More Detail: | Transconductance Amplifier 1 Circuit 14-SOIC |
DataSheet: | MAX436CSD+ Datasheet/PDF |
Quantity: | 1000 |
1 +: | 0.00000 |
Current - Input Bias: | 1µA |
Base Part Number: | MAX436 |
Supplier Device Package: | 14-SOIC |
Package / Case: | 14-SOIC (0.154", 3.90mm Width) |
Mounting Type: | Surface Mount |
Operating Temperature: | 0°C ~ 70°C |
Voltage - Supply, Single/Dual (±): | ±4.75 V ~ 5.25 V |
Current - Supply: | 35mA |
Voltage - Input Offset: | 300µV |
Series: | -- |
-3db Bandwidth: | 200MHz |
Slew Rate: | 850 V/µs |
Output Type: | -- |
Number of Circuits: | 1 |
Amplifier Type: | Transconductance |
Part Status: | Obsolete |
Packaging: | Tube |
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The MAX436CSD+ is a dual, low-power, high-performance instrumentation amplifier that combines a dual-mode architecture, high rail-to-rail input, wide common-mode range, 1.2MHz gain bandwidth, and rail-to-rail output, making it suitable for a variety of applications. The MAX436CSD+ features a high impedance input stage with low input bias current, very low power consumption, precision gain accuracy, and extremely high resistance to power-supply noise.
The applications of the MAX436CSD+ can be found in the areas of medical, instrumentation, and industrial control. Due to its high common-mode rejection, it is particularly well-suited for medical systems such as patient monitoring and laboratory testing. The high-impedance input also allows for accurate measurements of low-level signals such as pH. The low power consumption makes it ideal for portable medical devices.
In instrumentation applications, the MAX436CSD+ is capable of providing accurate voltage measurements without having to amplify the signal. It is suitable for use in data acquisition systems, signal conditioning, signal isolation, and automatic test systems. The high-impedance input is also well-suited for application with low-level signals such as strain gauges or thermocouples.
The MAX436CSD+ can also be used in industrial control applications due to its wide common-mode range and high rail-to-rail output. Its noise immunity makes it suitable for use in harsh industrial environments. It can be used for signal conditioning and isolation in process control, incremental and absolute encoders, and temperature control.
Apart from its applications, the working principle of the MAX436CSD+ is also of utmost importance. The MAX436CSD+ is a high-performance, low-noise instrumentation amplifier with a dual-mode architecture. It consists of two differential inputs that are buffered by two differentially-connected buffers. The two buffer outputs are then connected to a common mode feedback amplifier that sets the gain of the device. The output of the device is obtained by combining the two differential input signals and the output of the common mode feedback amplifier.
The MAX436CSD+ also contains a high-impedance input stage that has a low input bias current and a very high input resistance. This high input impedance allows the device to accurately measure low-level signals like strain gauges and temperature sensors. The low input bias current also allows it to provide accurate results over a wide temperature range.
The MAX436CSD+ also contains a low-power architecture that consumes only 4 mA of supply current. This makes the device suitable for use in portable and energy efficient applications. The rail-to-rail output also ensures that the full dynamic range of the device is utilized.
In conclusion, the MAX436CSD+ is a high-performance, low-power instrumentation amplifier that is suitable for applications such as medical, instrumentation, and industrial control. The high impedance input and low input bias current makes it suitable for measuring low-level signals. The low power consumption also allows it to be used in portable and energy efficient applications. The rail-to-rail output and wide common-mode range make it the ideal choice for applications where high accuracy and noise immunity is required.
The specific data is subject to PDF, and the above content is for reference
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