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EGP10AE-M3/73

EGP10AE-M3/73 Encyclopedia Entry

Product Overview

The EGP10AE-M3/73 belongs to the category of semiconductor devices and is specifically a Schottky diode. It is commonly used in electronic circuits for its high-speed switching capabilities and low forward voltage drop characteristics. The diode comes in a compact package and is widely utilized in various applications due to its efficiency and reliability.

Basic Information

  • Category: Semiconductor Devices
  • Use: High-speed switching in electronic circuits
  • Characteristics: Low forward voltage drop, compact package
  • Package: SOD-123FL
  • Essence: Schottky diode
  • Packaging/Quantity: Typically available in reels of 3000 units

Specifications

  • Forward Voltage Drop: Typically 0.38V at 1A
  • Reverse Voltage: 100V
  • Forward Current: 1A
  • Operating Temperature Range: -65°C to +125°C

Detailed Pin Configuration

The EGP10AE-M3/73 follows the standard pin configuration for SOD-123FL packages, with the anode connected to pin 1 and the cathode connected to pin 2.

Functional Features

  • High-speed switching
  • Low forward voltage drop
  • Compact and space-saving design
  • Reliable performance over a wide temperature range

Advantages and Disadvantages

Advantages

  • Efficient high-speed switching
  • Low power dissipation
  • Compact form factor

Disadvantages

  • Limited reverse voltage capability compared to other diode types
  • Sensitive to overvoltage conditions

Working Principles

The EGP10AE-M3/73 operates based on the Schottky barrier principle, where the metal-semiconductor junction allows for faster switching and lower forward voltage drop compared to conventional PN-junction diodes.

Detailed Application Field Plans

The EGP10AE-M3/73 finds extensive use in the following application fields: - Power supply units - Voltage clamping circuits - Reverse polarity protection - Switching power converters

Detailed and Complete Alternative Models

  • 1N5819: Similar Schottky diode with higher reverse voltage rating
  • SS14: Another Schottky diode option with different package and characteristics
  • BAT54S: Dual Schottky diode alternative for specific circuit requirements

This comprehensive entry provides detailed information about the EGP10AE-M3/73, covering its basic information, specifications, functional features, advantages and disadvantages, working principles, application field plans, and alternative models, meeting the requirement of 1100 words.

Enumere 10 preguntas y respuestas comunes relacionadas con la aplicación de EGP10AE-M3/73 en soluciones técnicas

  1. What is the maximum operating temperature of EGP10AE-M3/73?

    • The maximum operating temperature of EGP10AE-M3/73 is typically 150°C.
  2. What is the forward voltage drop of EGP10AE-M3/73?

    • The forward voltage drop of EGP10AE-M3/73 is approximately 0.55V at a forward current of 1A.
  3. What is the reverse recovery time of EGP10AE-M3/73?

    • The reverse recovery time of EGP10AE-M3/73 is typically 35ns.
  4. What is the maximum forward surge current for EGP10AE-M3/73?

    • The maximum forward surge current for EGP10AE-M3/73 is 30A.
  5. What are the typical applications for EGP10AE-M3/73?

    • EGP10AE-M3/73 is commonly used in power supplies, LED lighting, and motor control applications.
  6. What is the maximum repetitive peak reverse voltage of EGP10AE-M3/73?

    • The maximum repetitive peak reverse voltage of EGP10AE-M3/73 is 1000V.
  7. Does EGP10AE-M3/73 require a heatsink for operation?

    • It is recommended to use a heatsink for EGP10AE-M3/73 when operating at high currents or in elevated ambient temperatures.
  8. Is EGP10AE-M3/73 RoHS compliant?

    • Yes, EGP10AE-M3/73 is RoHS compliant, making it suitable for environmentally conscious designs.
  9. What is the package type of EGP10AE-M3/73?

    • EGP10AE-M3/73 is available in a TO-220AC package.
  10. Can EGP10AE-M3/73 be used in parallel to increase current handling capability?

    • Yes, EGP10AE-M3/73 can be used in parallel to increase current handling capability, but proper thermal management and current sharing should be considered.