Manufacturer Part Number
SN74F11NS
Manufacturer
Texas Instruments
Introduction
The SN74F11NS is a triple 3-input positive-NAND gate from Texas Instruments. It is part of the 74F series of logic gates, known for their high-speed performance and reliability. This product is designed for use in a wide range of digital circuits and systems, where high-speed logic operations are required.
Product Features and Performance
Triple 3-input positive-NAND gate
Propagation delay of typically 5.5 ns
Operates over a wide voltage range of 4.5V to 5.5V
Supports high-speed, low-power operation
Designed using advanced bipolar transistor technology for improved reliability and performance
Product Advantages
High-speed operation for efficient digital processing
Low power consumption for energy-efficient designs
Reliable and robust performance for long-lasting applications
Versatile and can be used in a variety of digital circuits
Key Reasons to Choose This Product
Exceptional speed and performance for time-critical applications
Proven reliability and durability for long-lasting operation
Compatibility with a wide range of digital systems and components
Cost-effective solution for high-volume digital logic applications
Quality and Safety Features
Rigorous quality control and testing procedures
Compliance with industry safety standards
Robust design for reliable and safe operation
Compatibility
The SN74F11NS is designed to be compatible with a wide range of digital logic circuits and systems, including microcontrollers, digital signal processors, and other digital electronics.
Application Areas
Digital processing and control systems
High-speed data processing and communication
Industrial automation and control
Automotive electronics
Consumer electronics
Product Lifecycle
The SN74F11NS is an active product in our website's sales team portfolio. There are currently no announced plans for discontinuation. However, as technology evolves, customers are advised to contact our website's sales team for the latest information on product availability and potential alternative models.