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TLP3120(F) - Toshiba

Description: Toshiba TLP3120(F) DC Input MOSFET Output Optocoupler, Surface Mount, 6-Pin SOP

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TLP3120(F) - Toshiba PCB footprint - Small Outline Packages - Small Outline Packages - 11-7C1
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TLP3120(F) Details

  • Manufacturer Part Number:

    TLP3120(F)

  • Rohs Code:

    Yes

  • Part Life Cycle Code:

    Obsolete

  • Package Description:

    SOP-6

  • HTS Code:

    8541.40.95.00

  • Manufacturer:

    Toshiba America Electronic Components

  • YTEOL:

    0

  • Control Current:

    0.005 A

  • Control Voltage:

    1 V

  • Forward Current-Max:

    0.03 A

  • Input Type:

    DC

  • Mounting Feature:

    SURFACE MOUNT

  • On-State Current-Max:

    1.25 A

  • On-state Resistance-Max:

    0.15 Ω

  • Operating Temperature-Max:

    60 °C

  • Operating Temperature-Min:

    25 °C

  • Output Circuit Type:

    MOSFET

  • Overall Height:

    2.1 mm

  • Overall Length:

    6.3 mm

  • Surface Mount:

    YES

TLP3120(F) Frequently Asked Questions (FAQs)

  • A good PCB layout practice is to keep the input and output traces separate, use a ground plane, and minimize the loop area of the input and output traces to reduce EMI. Additionally, placing a 10nF capacitor between the VCC and GND pins can help reduce noise.
  • To ensure proper biasing, connect the VCC pin to a stable 5V power supply, and the GND pin to a solid ground plane. Also, make sure the input signal is within the recommended voltage range (0.5V to 5.5V) and the output is properly terminated.
  • The maximum cable length supported by the TLP3120(F) depends on the specific application and the type of cable used. As a general guideline, the TLP3120(F) can support cable lengths up to 10 meters (33 feet) for standard Category 5e cables.
  • The TLP3120(F) is rated for operation up to 85°C (185°F). However, it's recommended to derate the device's performance at higher temperatures. Consult the datasheet for specific derating guidelines.
  • To troubleshoot issues with the TLP3120(F), start by verifying the power supply voltage, checking for proper input signal levels, and ensuring the output is properly terminated. Use an oscilloscope to check the input and output waveforms for any signs of distortion or noise.

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