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MC100EP101MNG - onsemi

Description: 250 ps Typical Propagation Delay; Maximum Frequency > 3 Ghz Typical; NECL Mode Operating Range: VCC=0 V with VEE = -3.0V to -5.5V; PECL mode Operating Range: 3.0V to 5.5V VCC with VEE = 0V; Open Input Default State; Pb-Free Packages are Available

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PCB Footprints
MC100EP101MNG - onsemi PCB footprint - Quad Flat No-Lead - Quad Flat No-Lead - QFN-32 CASE 488AM ISSUE A
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3D Models
MC100EP101MNG - onsemi  - 3D model - Quad Flat No-Lead - QFN-32 CASE 488AM ISSUE A
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MC100EP101MNG Details

  • Manufacturer Part Number:

    MC100EP101MNG

  • Brand Name:

    onsemi

  • Pbfree Code:

    Yes

  • Rohs Code:

    Yes

  • Part Life Cycle Code:

    Active

  • Part Package Code:

    QFN32, 5x5, 0.5P, 3.1x3.1EP

  • Package Description:

    QFN-32

  • Pin Count:

    32

  • Manufacturer Package Code:

    488AM

  • Country Of Origin:

    Thailand

  • HTS Code:

    8542.39.00.60

  • Factory Lead Time:

    16 Weeks

  • Manufacturer:

    onsemi

  • YTEOL:

    5

  • Additional Feature:

    NECL MODE: VCC = 0V WITH VEE = -3V TO -5.5V

  • Family:

    100E

  • JESD-30 Code:

    S-XQCC-N32

  • JESD-609 Code:

    e3

  • Length:

    5 mm

  • Logic IC Type:

    OR/NOR GATE

  • Moisture Sensitivity Level:

    1

  • Number of Functions:

    4

  • Number of Inputs:

    4

  • Number of Terminals:

    32

  • Operating Temperature-Max:

    85 °C

  • Operating Temperature-Min:

    -40 °C

  • Package Body Material:

    UNSPECIFIED

  • Package Code:

    HVQCCN

  • Package Equivalence Code:

    LCC32,.2SQ,20

  • Package Shape:

    SQUARE

  • Package Style:

    CHIP CARRIER, HEAT SINK/SLUG, VERY THIN PROFILE

  • Packing Method:

    TRAY

  • Peak Reflow Temperature (Cel):

    260

  • Power Supply Current-Max (ICC):

    88 mA

  • Prop. Delay@Nom-Sup:

    0.45 ns

  • Propagation Delay (tpd):

    0.4 ns

  • Qualification Status:

    Not Qualified

  • Schmitt Trigger:

    NO

  • Seated Height-Max:

    1 mm

  • Supply Voltage-Max (Vsup):

    5.5 V

  • Supply Voltage-Min (Vsup):

    3 V

  • Supply Voltage-Nom (Vsup):

    3.3 V

  • Surface Mount:

    YES

  • Technology:

    ECL

  • Temperature Grade:

    INDUSTRIAL

  • Terminal Finish:

    Matte Tin (Sn) - annealed

  • Terminal Form:

    NO LEAD

  • Terminal Pitch:

    0.5 mm

  • Terminal Position:

    QUAD

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

    30

  • Width:

    5 mm

MC100EP101MNG Frequently Asked Questions (FAQs)

  • The recommended PCB layout for the MC100EP101MNG involves using a symmetrical layout with a central ground plane, minimizing trace lengths, and using controlled impedance lines to reduce signal reflections and crosstalk. It's also recommended to place the device near the center of the board and use a common ground point for the device and the surrounding components.
  • The MC100EP101MNG has a maximum junction temperature of 150°C. To handle thermal management, it's recommended to provide a thermal pathway from the device to a heat sink or a metal chassis, and to ensure good air flow around the device. Additionally, the device should be mounted on a multi-layer PCB with a thermal via to dissipate heat effectively.
  • The MC100EP101MNG has ESD protection built-in, but it's still recommended to follow proper ESD handling precautions during assembly and testing. This includes using an ESD wrist strap, ESD mat, and ESD-safe packaging materials. It's also recommended to avoid touching the device pins during handling and to use a soldering iron with an ESD-safe tip.
  • The MC100EP101MNG is specified to operate up to 3.2 GHz, but it's not recommended to use the device beyond this frequency range. Operating the device beyond the specified frequency range may result in degraded performance, increased power consumption, and reduced reliability. If a higher frequency range is required, a different device should be selected.
  • To troubleshoot issues with the MC100EP101MNG, it's recommended to start by reviewing the device datasheet and application notes to ensure that the device is used within its specified operating conditions. Next, use a signal generator and oscilloscope to verify the input and output signals, and check for any signs of signal distortion, attenuation, or noise. If the issue persists, it may be necessary to perform a more detailed analysis using a vector network analyzer or a logic analyzer.

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