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AT24C08-10TC-1.8

AT24C08-10TC-1.8

Product Overview

Category

AT24C08-10TC-1.8 belongs to the category of electrically erasable programmable read-only memory (EEPROM) chips.

Use

This product is commonly used for non-volatile data storage in various electronic devices such as microcontrollers, computers, and consumer electronics.

Characteristics

  • Electrically erasable: The data stored in AT24C08-10TC-1.8 can be erased and reprogrammed electronically.
  • Non-volatile: The stored data remains intact even when power is removed.
  • High storage capacity: AT24C08-10TC-1.8 has a storage capacity of 8 kilobits (1 kilobyte).
  • Low power consumption: This chip operates at low power levels, making it suitable for battery-powered devices.

Package

AT24C08-10TC-1.8 is available in a small surface-mount package (TC) with 8 pins.

Essence

The essence of AT24C08-10TC-1.8 lies in its ability to provide reliable and non-volatile data storage in a compact form factor.

Packaging/Quantity

This product is typically packaged in reels or tubes, with each reel or tube containing a specific quantity of AT24C08-10TC-1.8 chips.

Specifications

  • Memory Capacity: 8 kilobits (1 kilobyte)
  • Operating Voltage: 1.8V
  • Interface: I2C (Two-wire Serial Interface)
  • Write Cycle Endurance: 1 million cycles
  • Data Retention: 100 years
  • Operating Temperature Range: -40°C to +85°C

Detailed Pin Configuration

  1. A0: Chip Address Input
  2. A1: Chip Address Input
  3. A2: Chip Address Input
  4. GND: Ground
  5. SDA: Serial Data Input/Output
  6. SCL: Serial Clock Input
  7. WP: Write Protect
  8. VCC: Power Supply

Functional Features

  • Random access: Allows reading and writing of data at any memory location.
  • Byte-level operations: Supports individual byte read and write operations.
  • Hardware write protection: The WP pin can be used to protect the memory from accidental writes.
  • Acknowledge support: Provides acknowledgment during data transfer, ensuring reliable communication.

Advantages and Disadvantages

Advantages

  • Non-volatile storage: Ensures data integrity even in the absence of power.
  • Compact form factor: Suitable for space-constrained applications.
  • Low power consumption: Ideal for battery-powered devices.
  • High endurance: Can withstand frequent write cycles without degradation.

Disadvantages

  • Limited storage capacity: May not be suitable for applications requiring large amounts of data storage.
  • Relatively slower write speed compared to other memory technologies.

Working Principles

AT24C08-10TC-1.8 utilizes electrically erasable programmable read-only memory (EEPROM) technology. It consists of a grid of memory cells that can be individually programmed or erased using electrical signals. The stored data is retained even when power is removed, making it non-volatile.

The chip communicates with the host device through the I2C interface, enabling easy integration into various systems. The serial clock (SCL) and serial data (SDA) lines facilitate data transfer between the chip and the host.

Detailed Application Field Plans

AT24C08-10TC-1.8 finds applications in various fields, including: 1. Microcontrollers: Used for storing program code, configuration settings, and calibration data. 2. Computers: Employed in BIOS chips, expansion cards, and other peripheral devices. 3. Consumer Electronics: Integrated into smart TVs, set-top boxes, and audio/video equipment for data storage purposes.

Detailed and Complete Alternative Models

  1. AT24C01A-10PU-2.7: 1 kilobit EEPROM chip with an operating voltage of 2.7V.
  2. AT24C16A-10PI-1.8: 16 kilobit EEPROM chip with an operating voltage of 1.8V.
  3. AT24C64C-SSHM-T: 64 kilobit EEPROM chip with an operating voltage range of 1.7V to 5.5V.

These alternative models offer different storage capacities, operating voltages, and package options, providing flexibility for various application requirements.

In conclusion, AT24C08-10TC-1.8 is a compact and reliable EEPROM chip that offers non-volatile data storage in electronic devices. Its high endurance, low power consumption, and random access capabilities make it suitable for a wide range of applications.

技術ソリューションにおける AT24C08-10TC-1.8 の適用に関連する 10 件の一般的な質問と回答をリストします。

Sure! Here are 10 common questions and answers related to the application of AT24C08-10TC-1.8 in technical solutions:

Q1: What is AT24C08-10TC-1.8? A1: AT24C08-10TC-1.8 is an EEPROM (Electrically Erasable Programmable Read-Only Memory) chip with a capacity of 8 kilobits (1024 bytes) and operates at a voltage of 1.8V.

Q2: What are the typical applications of AT24C08-10TC-1.8? A2: AT24C08-10TC-1.8 is commonly used in various technical solutions such as data storage, configuration settings, security keys, and small-scale data logging.

Q3: What is the maximum clock frequency supported by AT24C08-10TC-1.8? A3: The maximum clock frequency supported by AT24C08-10TC-1.8 is 400 kHz.

Q4: How many write cycles can AT24C08-10TC-1.8 endure? A4: AT24C08-10TC-1.8 can endure up to 1 million write cycles.

Q5: Can AT24C08-10TC-1.8 be operated at higher voltages than 1.8V? A5: No, AT24C08-10TC-1.8 is specifically designed to operate at a voltage of 1.8V and should not be operated at higher voltages.

Q6: Is AT24C08-10TC-1.8 compatible with I2C communication protocol? A6: Yes, AT24C08-10TC-1.8 supports the I2C (Inter-Integrated Circuit) communication protocol.

Q7: What is the typical data retention period of AT24C08-10TC-1.8? A7: The typical data retention period of AT24C08-10TC-1.8 is 100 years.

Q8: Can AT24C08-10TC-1.8 be used in automotive applications? A8: Yes, AT24C08-10TC-1.8 is suitable for automotive applications as it can withstand a wide temperature range and has high reliability.

Q9: Does AT24C08-10TC-1.8 have any built-in security features? A9: No, AT24C08-10TC-1.8 does not have any built-in security features. Additional measures need to be implemented for data security if required.

Q10: Can multiple AT24C08-10TC-1.8 chips be connected together on the same I2C bus? A10: Yes, multiple AT24C08-10TC-1.8 chips can be connected together on the same I2C bus by assigning unique addresses to each chip.

Please note that these answers are general and may vary depending on the specific implementation and requirements of your technical solution.