Manufacturer Part Number
LTC2364CDE-16#PBF
Manufacturer
analog-devices
Introduction
The LTC2364CDE-16#PBF is a high-performance, 16-bit successive approximation register (SAR) analog-to-digital converter (ADC) from Analog Devices. It offers a sampling rate of up to 250 kSPS and features a pseudo-differential input type, making it suitable for a wide range of data acquisition and signal processing applications.
Product Features and Performance
16-bit resolution
Sampling rate up to 250 kSPS
Pseudo-differential input type
Single-channel configuration
SPI digital interface
1:1 S/H:ADC ratio
SAR architecture
External reference type
375V to 2.625V analog and digital supply voltage
Product Advantages
High-performance data conversion with 16-bit resolution
Fast sampling rate up to 250 kSPS
Pseudo-differential input for improved noise immunity
Flexible SPI digital interface for easy integration
Low power consumption with 2.375V to 2.625V supply voltage
Key Reasons to Choose This Product
Exceptional performance for data acquisition and signal processing applications
Versatile input type and interface options for design flexibility
Reliable and efficient operation with low power requirements
Backed by Analog Devices' reputation for quality and innovation
Quality and Safety Features
Robust 16-WFDFN exposed pad package for reliable operation
Surface mount design for secure and compact integration
Operating temperature range of 0°C to 70°C
Compatibility
The LTC2364CDE-16#PBF is compatible with a wide range of analog and digital systems, making it suitable for a variety of applications, including:
Industrial automation and control
Medical instrumentation
Test and measurement equipment
Communication systems
Portable and battery-powered devices
Application Areas
Data acquisition
Signal processing
Sensor interfacing
Instrumentation and control systems
Portable and battery-powered applications
Product Lifecycle
The LTC2364CDE-16#PBF is an active product and is currently available. There are no known plans for discontinuation of this model at this time.