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XLH736080.000000I - Renesas Electronics

Description: Standard Clock Oscillators 80MHz 3.3Volt 25ppm -40C +85C

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PCB Footprints
XLH736080.000000I - Renesas Electronics PCB footprint - Other - Other - XLH736080.000000I-2
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3D Models
XLH736080.000000I - Renesas Electronics  - 3D model - Other - XLH736080.000000I-2
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XLH736080.000000I Details

  • Manufacturer Part Number:

    XLH736080.000000I

  • Part Life Cycle Code:

    Active

  • ECCN Code:

    EAR99

  • HTS Code:

    8542.39.00.01

  • Factory Lead Time:

    12 Weeks

  • Manufacturer:

    Renesas Electronics Corporation

  • YTEOL:

    6.44

  • Additional Feature:

    ENABLE/DISABLE FUNCTION; COMPLEMENTARY OUTPUT

  • Fall Time-Max:

    3 ns

  • Frequency Adjustment-Mechanical:

    NO

  • Frequency Stability:

    25%

  • Mounting Feature:

    SURFACE MOUNT

  • Number of Terminals:

    6

  • Operating Frequency-Nom:

    80 MHz

  • Operating Temperature-Max:

    85 °C

  • Operating Temperature-Min:

    -40 °C

  • Oscillator Type:

    HCMOS

  • Output Load:

    15 pF

  • Package Equivalence Code:

    DILCC6,.2

  • Physical Dimension:

    7.0mm x 5.0mm x 1.3mm

  • Rise Time-Max:

    3 ns

  • Supply Current-Max:

    47 mA

  • Supply Voltage-Max:

    3.465 V

  • Supply Voltage-Min:

    3.135 V

  • Supply Voltage-Nom:

    3.3 V

  • Surface Mount:

    YES

  • Symmetry-Max:

    60/40 %

XLH736080.000000I Frequently Asked Questions (FAQs)

  • A 4-layer PCB with a dedicated ground plane and thermal vias is recommended for optimal thermal performance. Ensure a minimum of 1 oz copper thickness and a thermal relief pattern around the device.
  • Implement a robust power-on reset circuit, ensure a stable clock signal, and use a reliable voltage regulator. Also, consider using a thermistor or thermocouple to monitor temperature and adjust system parameters accordingly.
  • The external clock signal should have a frequency of 10-40 MHz, with a duty cycle of 40-60%. The clock signal should also have a rise and fall time of less than 10 ns, and a jitter of less than 100 ps.
  • Use the device's built-in power management features, such as the low-power modes and clock gating. Also, consider using a dynamic voltage and frequency scaling (DVFS) technique to optimize power consumption.
  • Implement ESD protection diodes on all input and output pins, and consider using a TVS (transient voltage suppressor) diode on the power supply lines. Also, ensure that the PCB design follows ESD-safe handling and assembly practices.

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