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DIODES BSP75GTARoHS

Manufacturer
MPN
BSP75GTA
LCSC Part #
C173988
Packaging
SOT-223
Customer #
Key Attributes
MOSFET N-CH 60V 1.6A SOT-223
Datasheetpdf iconDIODES BSP75GTA
In-Stock: 998
998 In stock, ships now
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QtyUnit PriceTotal Amount
1+$ 1.2521$ 1.25
10+$ 1.0733$ 10.73
30+$ 0.9757$ 29.27
100+$ 0.8651$ 86.51
500+$ 0.7253$ 362.65
1,000+$ 0.7041$ 704.10
Standard Packaging1000/Full Reel
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Products Specifications

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TypeDescription
CategoryIntegrated Circuits (ICs)/Power Management (PMIC)/Power Distribution Switches, Load Drivers
ManufacturerDIODES
PackagingSOT-223
Operating Temperature-40℃~+150℃
Drain to Source Voltage60V
Current - Continuous Drain(Id)1.6A
Reverse Transfer Capacitance (Crss@Vds)-
Number1 N-channel
RDS(on)385mΩ@10V
Pd - Power Dissipation2.5W
Output Capacitance(Coss)-
TypeN-Channel

Additional Information

TypeDetails
Minimum1
Multiple1
Standard Packaging1000
Sales UnitPiece

Introduction

AI Translation

BSP75G is a self-protected low-side MOSFET. It features monolithic overtemperature, overcurrent, overvoltage (active clamp), and ESD protection with logic-level capability, designed for use as a general-purpose switch.

Features

AI Translation
  • Short-circuit protection with auto-restart
  • Overvoltage protection (active clamp)
  • Thermal shutdown with auto-restart
  • Overcurrent protection
  • Input protection (ESD)
  • Load dump protection (active load protection)
  • Logic-level input
  • High continuous current rating
  • Lead-free finish; RoHS compliant
  • Halogen- and antimony-free. "Green" device
  • Automotive-grade variant available (BSP75GQ), covered by a separate datasheet

Applications

AI Translation
  • Ideal for loads with high inrush currents, such as lamps and motors
  • All types of resistive, inductive, and capacitive loads in switching applications
  • µC-compatible power switch for 12V and 24V DC applications
  • Compliant with automotive application standards
  • Replacement for electromechanical relays and discrete circuits
  • Linear mode capability — the current-limiting protection circuit is designed to deactivate at low VDS to avoid affecting load current during normal operation. Therefore, the maximum DC operating current is determined by the thermal dissipation capability of the package/PCB combination, not the protection circuit.