LTC6406CUD#PBF Allicdata Electronics
Allicdata Part #:

LTC6406CUD#PBF-ND

Manufacturer Part#:

LTC6406CUD#PBF

Price: $ 4.89
Product Category:

Integrated Circuits (ICs)

Manufacturer: Linear Technology/Analog Devices
Short Description: IC DIFF AMP/DRIVER R-R 16-QFN
More Detail: ADC Driver IC Data Acquisition 16-QFN-EP (3x3)
DataSheet: LTC6406CUD#PBF datasheetLTC6406CUD#PBF Datasheet/PDF
Quantity: 461
1 +: $ 4.44150
25 +: $ 3.15529
100 +: $ 2.60253
Stock 461Can Ship Immediately
$ 4.89
Specifications
Series: --
Packaging: Tube 
Part Status: Active
Type: ADC Driver
Applications: Data Acquisition
Mounting Type: Surface Mount
Package / Case: 16-WFQFN Exposed Pad
Supplier Device Package: 16-QFN-EP (3x3)
Base Part Number: LTC6406
Description

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LTC6406CUD#PBF Application Field and Working Principle

The LTC6406CUD#PBF is a special purpose linear amplifier belonging to the linear amplifier class. It is a part of the LTx404 DFN-10 family created by Linear Technology Corporation. This particular model is designed for low-cost, low-supply voltage operation, single- or dual-channel operation and for high linearity, gain and dynamic range performance.

The LTC6406CUD#PBF is ideal for sensor applications such as optical, piezoelectric, and remote radio frequency (RF) which require low-voltage operation, making it one of the most popular tools for applications such as test and measurement equipment and automotive applications. The amplifier also offers excellent gain-bandwidth, low distortion and high common-mode rejection ratio, which improves performance in multiple gain, biasing, and filtering applications.

The LTC6406CUD#PBF amplifier has an all-discrete design, providing superior thermal performance, and an adjustable peak-to-peak offset with DC offset optimization across temperature and supply voltage ranges. The amplifier’s differential inputs, low noise, quiescent current consumption, and high input impedance make it one of the most cost-effective amplifiers available in the market.

The amplifier is powered by either a single supply or dual supplies. When it is powered with dual supplies, it can achieve higher power gains. The supply voltage range is 3.2V to 30V. Operating temperature range is from -40 degrees C to 85 degrees C. It is a fully shielded device with a wide, low-impedance input impedance. Its frequency response is from 17 Hz to 2.2 MHz (G=1) and from 16 Hz to 1.1 MHz (G=2). Maximum single-ended differential is 7V and maximum differential voltage is 20V.

With the LTC6406CUD#PBF, the working principle is simple: when the input voltage applied to the amplifier is higher than the threshold voltage, it starts to amplify the voltage applied and then outputs the resulting amplified signal. The amount of amplification is determined by how much the input voltage exceeds the threshold voltage and is called the ‘gain’ of the amplifier. The amplifier is also capable of being configured with a direct current (DC) offset, which is added to the input signal. This offset is adjustable by changing the supply voltage.

This amplifier can also be externally configured to provide unity gain and gain of 2. The amplifier is mainly used for signal amplification and filtering. The amplifier has been designed for applications requiring low-cost, low-power, low-voltage linear operation, such as acoustic sensors, radio receivers, and monitoring of industrial process signals. It is also used for real-time signal modification, such as attenuation, linearization, amplification, and filtering.

In summary, the LTC6406CUD#PBF is a special purpose linear amplifier belonging to the linear amplifier class. It is designed for sensor applications requiring low-voltage operation. The amplifier has an all-discrete design providing superior thermal performance. The operating temperature range is from -40 degrees C to 85 degrees C and the supply voltage range is 3.2V to 30V. The amplifier can be configured with a direct current (DC) offset that can be adjusted by changing the supply voltage. The amplifier is mainly used for signal amplification and filtering as well as real-time signal modification.

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

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