Manufacturer Part Number
SST26VF064BT-104I/TD
Manufacturer
microchip-technology
Introduction
The SST26VF064BT-104I/TD is a high-performance, low-power, serial flash memory device from Microchip Technology. It offers a large 64Mbit memory capacity, fast clock frequency of 104MHz, and supports SPI - Quad I/O interface for efficient data transfer.
Product Features and Performance
64Mbit non-volatile FLASH memory
8M x 8 memory organization
SPI Quad I/O interface for high-speed data communication
Clock frequency up to 104MHz
Fast write cycle time of 1.5ms for word and page
Operating voltage range of 2.7V to 3.6V
Wide operating temperature range of -40°C to 85°C
Product Advantages
Large memory capacity for data-intensive applications
High-speed data transfer with Quad I/O interface
Low-power operation for energy-efficient designs
Extended temperature range for industrial and automotive use
Key Reasons to Choose This Product
Industry-leading performance and reliability from Microchip Technology
Scalable memory capacity to fit diverse application needs
Seamless integration with Microchip's broad portfolio of microcontrollers and systems-on-chip
Backed by Microchip's extensive technical support and product lifecycle management
Quality and Safety Features
Rigorous quality control and testing procedures
RoHS-compliant for environmentally-conscious designs
Industrial-grade reliability and endurance
Compatibility
The SST26VF064BT-104I/TD is compatible with a wide range of electronic systems and devices that require high-performance, non-volatile memory.
Application Areas
Industrial automation and control systems
Automotive electronics and infotainment systems
Portable and handheld devices
IoT and edge computing applications
Medical equipment and instrumentation
Product Lifecycle
The SST26VF064BT-104I/TD is an actively supported product in Microchip's portfolio. There are no plans for discontinuation at this time. Customers are advised to check with our website's sales team for the latest information on product availability and potential alternative models.