AT24C16D-STUM-T belongs to the category of EEPROM (Electrically Erasable Programmable Read-Only Memory) chips.
This product is commonly used for non-volatile data storage in various electronic devices, such as microcontrollers, computers, and consumer electronics.
AT24C16D-STUM-T is available in a small surface-mount package, making it suitable for compact electronic devices.
The essence of this product lies in its ability to provide reliable and flexible data storage solutions for a wide range of applications.
AT24C16D-STUM-T is typically packaged in reels or tubes, with each reel/tube containing a specific quantity of chips. The exact packaging and quantity may vary depending on the manufacturer.
AT24C16D-STUM-T has a total of 8 pins, which are assigned specific functions:
AT24C16D-STUM-T utilizes EEPROM technology, which allows for electrically erasing and reprogramming of data. It consists of a grid of memory cells that can be individually addressed for read or write operations. The data is stored as electrical charges within these cells, and the state of each cell determines the stored information.
During write operations, the desired data is sent serially through the I2C interface and stored in the appropriate memory location. Reading involves retrieving the stored data by specifying the memory address. The chip's internal circuitry handles the necessary operations to ensure accurate data retrieval and storage.
AT24C16D-STUM-T finds applications in various fields, including:
Some alternative models to AT24C16D-STUM-T include:
These alternative models
Sure! Here are 10 common questions and answers related to the application of AT24C16D-STUM-T in technical solutions:
Q: What is AT24C16D-STUM-T? A: AT24C16D-STUM-T is a serial EEPROM (Electrically Erasable Programmable Read-Only Memory) chip with a capacity of 16 kilobits (2 kilobytes). It is commonly used for storing small amounts of non-volatile data in electronic devices.
Q: What are the main features of AT24C16D-STUM-T? A: Some key features of AT24C16D-STUM-T include I2C interface, low power consumption, 1 MHz clock frequency, 1 million write cycles endurance, and 100-year data retention.
Q: How can AT24C16D-STUM-T be used in technical solutions? A: AT24C16D-STUM-T can be used for various purposes such as storing configuration settings, calibration data, user preferences, or other small data sets in embedded systems, IoT devices, industrial equipment, and consumer electronics.
Q: What is the voltage range supported by AT24C16D-STUM-T? A: AT24C16D-STUM-T supports a wide voltage range of 1.7V to 5.5V, making it compatible with a variety of microcontrollers and systems.
Q: How do I communicate with AT24C16D-STUM-T? A: AT24C16D-STUM-T uses the I2C (Inter-Integrated Circuit) protocol for communication. You can connect it to your microcontroller or system using the SDA (Serial Data) and SCL (Serial Clock) lines.
Q: Can I write data to AT24C16D-STUM-T multiple times? A: Yes, AT24C16D-STUM-T supports up to 1 million write cycles. However, it's important to note that each memory location can only be written to a limited number of times before it wears out.
Q: How fast can I read from and write to AT24C16D-STUM-T? A: AT24C16D-STUM-T supports a maximum clock frequency of 1 MHz, allowing for relatively fast read and write operations.
Q: Is AT24C16D-STUM-T suitable for high-temperature environments? A: Yes, AT24C16D-STUM-T has an extended temperature range of -40°C to +125°C, making it suitable for use in applications that require operation in harsh or extreme conditions.
Q: Can I cascade multiple AT24C16D-STUM-T chips together? A: Yes, you can connect multiple AT24C16D-STUM-T chips in a cascaded manner using the I2C bus, allowing you to expand the storage capacity if needed.
Q: Are there any development tools or libraries available for working with AT24C16D-STUM-T? A: Yes, various microcontroller platforms provide libraries and example code for interfacing with AT24C16D-STUM-T. Additionally, the datasheet and application notes provided by the manufacturer offer guidance on how to use the chip effectively.