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2SCR375P5T100R - ROHM Semiconductor

Description: Bipolar Transistors - BJT NPN 120V Vceo 1.5A Ic MPT3

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PCB Footprints
2SCR375P5T100R - ROHM Semiconductor PCB footprint - Other - Other - SOT-89  (MPT3)
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3D Models
2SCR375P5T100R - ROHM Semiconductor  - 3D model - Other - SOT-89  (MPT3)
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2SCR375P5T100R Details

  • Manufacturer Part Number:

    2SCR375P5T100R

  • Rohs Code:

    Yes

  • Part Life Cycle Code:

    Active

  • Package Description:

    SC-62, 3 PIN

  • ECCN Code:

    EAR99

  • Date Of Intro:

    2016-04-06

  • Manufacturer:

    ROHM Semiconductor

  • YTEOL:

    7

  • Case Connection:

    COLLECTOR

  • Collector Current-Max (IC):

    1.5 A

  • Collector-Emitter Voltage-Max:

    120 V

  • Configuration:

    SINGLE

  • DC Current Gain-Min (hFE):

    180

  • JESD-30 Code:

    R-PSSO-F3

  • Number of Elements:

    1

  • Number of Terminals:

    3

  • Package Body Material:

    PLASTIC/EPOXY

  • Package Shape:

    RECTANGULAR

  • Package Style:

    SMALL OUTLINE

  • Peak Reflow Temperature (Cel):

    NOT SPECIFIED

  • Polarity/Channel Type:

    NPN

  • Surface Mount:

    YES

  • Terminal Form:

    FLAT

  • Terminal Position:

    SINGLE

  • Time@Peak Reflow Temperature-Max (s):

    NOT SPECIFIED

  • Transistor Application:

    AMPLIFIER

  • Transistor Element Material:

    SILICON

  • Transition Frequency-Nom (fT):

    200 MHz

2SCR375P5T100R Frequently Asked Questions (FAQs)

  • ROHM recommends a PCB layout with a thermal pad connected to a large copper area on the bottom layer, and multiple vias to dissipate heat efficiently.
  • Ensure the device is operated within the recommended temperature range, and consider using a heat sink or thermal interface material to reduce junction temperature.
  • The maximum allowed voltage for the gate-source and gate-drain pins is ±20V, as specified in the datasheet.
  • Yes, the 2SCR375P5T100R is suitable for high-frequency switching applications, but ensure the device is operated within the recommended frequency range and consider the effects of switching losses and thermal performance.
  • Use the equations provided in the datasheet to calculate the power dissipation based on the device's voltage and current ratings, and consider the thermal resistance and junction temperature.

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