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ILQ621 - Vishay

Description: Vishay Optocoupler ILQ621 Quad DC Input Transistor Output, 16-Pin PDIP, Through Hole

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PCB Footprints
ILQ621 - Vishay PCB footprint - Dual-In-Line Packages - Dual-In-Line Packages - DIP-16
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3D Models
ILQ621 - Vishay  - 3D model - Dual-In-Line Packages - DIP-16
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ILQ621 Details

  • Manufacturer Part Number:

    ILQ621

  • Pbfree Code:

    Yes

  • Rohs Code:

    Yes

  • Part Life Cycle Code:

    Active

  • ECCN Code:

    EAR99

  • HTS Code:

    8541.40.80.00

  • Date Of Intro:

    1993-01-01

  • Manufacturer:

    Vishay Intertechnologies

  • YTEOL:

    6

  • Coll-Emtr Bkdn Voltage-Min:

    70 V

  • Configuration:

    SEPARATE, 4 CHANNELS

  • Current Transfer Ratio-Min:

    50%

  • Current Transfer Ratio-Nom:

    80%

  • Dark Current-Max:

    100 nA

  • Forward Current-Max:

    0.06 A

  • Forward Voltage-Max:

    1.3 V

  • Isolation Voltage-Max:

    5300 V

  • JESD-609 Code:

    e3

  • Mounting Feature:

    THROUGH HOLE MOUNT

  • Number of Elements:

    4

  • On-State Current-Max:

    0.05 A

  • Operating Temperature-Max:

    100 °C

  • Operating Temperature-Min:

    -55 °C

  • Optoelectronic Device Type:

    TRANSISTOR OUTPUT OPTOCOUPLER

  • Power Dissipation-Max:

    0.15 W

  • Surface Mount:

    NO

  • Terminal Finish:

    Matte Tin (Sn)

ILQ621 Frequently Asked Questions (FAQs)

  • A recommended PCB layout for optimal thermal performance of the ILQ621 includes a thermal pad on the bottom of the package, connected to a large copper area on the PCB to dissipate heat efficiently.
  • To ensure reliability in high-temperature applications, it is essential to follow the recommended derating curves for the ILQ621, and to ensure that the device is operated within its specified temperature range.
  • The ILQ621 has built-in ESD protection, but it is still recommended to follow proper ESD handling procedures during assembly and testing to prevent damage to the device.
  • Yes, the ILQ621 can be used in high-frequency applications, but it is essential to consider the device's parasitic capacitance and inductance, and to follow proper PCB layout and design guidelines to minimize signal degradation.
  • To troubleshoot issues with the ILQ621, start by verifying the device's pinout and connections, then check for proper power supply and biasing, and finally, use oscilloscope measurements to identify any signal integrity issues.

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ILQ621 Overview

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