LTC6269HMS8E-10#PBF Allicdata Electronics
Allicdata Part #:

LTC6269HMS8E-10#PBF-ND

Manufacturer Part#:

LTC6269HMS8E-10#PBF

Price: $ 9.82
Product Category:

Integrated Circuits (ICs)

Manufacturer: Linear Technology/Analog Devices
Short Description: IC OPAMP 4GHZ SGL FET 8MSOP
More Detail: IC OPAMP 4GHZ SGL FET 8MSOP
DataSheet: LTC6269HMS8E-10#PBF datasheetLTC6269HMS8E-10#PBF Datasheet/PDF
Quantity: 164
1 +: $ 8.92710
25 +: $ 5.92855
100 +: $ 4.84520
Stock 164Can Ship Immediately
$ 9.82
Specifications
Voltage - Input Offset: 200µV
Base Part Number: LTC6269
Supplier Device Package: 8-MSOP-EP
Package / Case: 8-TSSOP, 8-MSOP (0.118", 3.00mm Width) Exposed Pad
Mounting Type: Surface Mount
Operating Temperature: -40°C ~ 125°C
Voltage - Supply, Single/Dual (±): 3.1 V ~ 5.25 V
Current - Output / Channel: 90mA
Current - Supply: 16.5mA
Series: --
Current - Input Bias: 4pA
Gain Bandwidth Product: 4GHz
Slew Rate: 1500 V/µs
Output Type: Rail-to-Rail
Amplifier Type: General Purpose
Part Status: Active
Packaging: Tube 
Description

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LTC6269HMS8E-10#PBF Application Field and Working Principle

This article will introduce the application fields and working principle of the LTC6269HMS8E-10#PBF, which belongs to the category of linear amplifiers, instrumentation, operational amplifiers, and buffer amplifiers.

Applications

The LTC6269HMS8E-10#PBF can be used in industrial automation and control, sensor interface, precision measurement, process control, digital signal processing, wireless communications, automotive, and medical applications. It is designed to handle a wide range of signal responses & amplifications, due to its low distortion, low noise, and low power consumption.

The LTC6269HMS8E-10#PBF has a wide gain bandwidth (15 kHz typical), low input offset voltage (8.5 μV), and low power consumption (175 μW/channel) which makes it well suited for precision applications such as amplifier stages, instrumentation amplifier chopping and level shifting applications. In addition, the extremely low distortion (0.0015%) is well suited for low frequency (< 320 kHz) applications such as battery-powered audio equipment, wireless communications and digital signal processing.

Working Principle

The working principle of the LTC6269HMS8E-10#PBF is based on differential amplification. The device uses an internal transconductance amplifier to convert the difference in the input signals into a current that is proportional to the input signals, but with a gain factor. This amplified current is then converted to a voltage to produce the output voltage.

The device has two differential inputs and one output. The two inputs are connected to two separate sources, and the output is connected to a load. When the difference between the two input signals is greater than a certain amount, usually 0.2v, the device is activated. The difference between the two input signals is amplified with a certain gain and the output voltage is the product of the amplified difference and the gain.

The gain of the LTC6269HMS8E-10# can be adjusted by changing the value of resistors in the feedback loop of the amplifier. The resistors are usually in the range of 1k to 10K and can be adjusted to increase or decrease the output voltage or current depending on the application.

The working principle of the LTC6269HMS8E-10#PBF is simple, yet powerful, making it a popular choice in a variety of industrial, automotive and medical applications.

Conclusion

The LTC6269HMS8E-10#PBF is a powerful amplifier belonging to the category of linear amplifiers, instrumentation, operational amplifiers, and buffer amplifiers. It is designed for precision applications, with a low distortion, low noise, and low power consumption. The working principle of the device is based on differential amplification, where the difference between two input signals is amplified and then fed to the output.

The LTC6269HMS8E-10#PBF can be used in a variety of industrial, automotive and medical applications due to its wide range of signal responses, amplifications and gain bandwidth. The gain of the amplifier can be adjusted by changing the value of resistors in the feedback loop of the amplifier, allowing users to tailor the output voltage or current for their specific application.

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

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