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300S14-U - THAT CORPORATION

Description: Bipolar Transistors - BJT 4 NPN Matched Trans. Array SO-14

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300S14-U - THAT CORPORATION PCB footprint - Small Outline Packages - Small Outline Packages - SO14
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300S14-U - THAT CORPORATION  - 3D model - Small Outline Packages - SO14
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300S14-U Details

  • Manufacturer Part Number:

    300S14-U

  • Rohs Code:

    Yes

  • Part Life Cycle Code:

    Contact Manufacturer

  • Package Description:

    SOP-14

  • ECCN Code:

    EAR99

  • Manufacturer:

    THAT Corporation

  • Case Connection:

    ISOLATED

  • Collector Current-Max (IC):

    0.03 A

  • Collector-Base Capacitance-Max:

    3 pF

  • Collector-Emitter Voltage-Max:

    36 V

  • Configuration:

    SEPARATE, 4 ELEMENTS

  • DC Current Gain-Min (hFE):

    60

  • JESD-30 Code:

    R-PDSO-G14

  • Number of Elements:

    4

  • Number of Terminals:

    14

  • Operating Temperature-Max:

    85 °C

  • Operating Temperature-Min:

    -40 °C

  • Package Body Material:

    PLASTIC/EPOXY

  • Package Shape:

    RECTANGULAR

  • Package Style:

    SMALL OUTLINE

  • Polarity/Channel Type:

    NPN

  • Surface Mount:

    YES

  • Terminal Form:

    GULL WING

  • Terminal Position:

    DUAL

  • Transistor Application:

    AMPLIFIER

  • Transistor Element Material:

    SILICON

  • Transition Frequency-Nom (fT):

    350 MHz

300S14-U Frequently Asked Questions (FAQs)

  • The recommended operating temperature range for the 300S14-U is -40°C to +85°C.
  • To ensure proper biasing, connect the VCC pin to a stable 5V power supply, and the VEE pin to a stable -5V power supply. Also, make sure to decouple the power supplies with 10uF capacitors.
  • The maximum input signal amplitude that the 300S14-U can handle is ±10V peak-to-peak.
  • To minimize noise and hum, use a well-regulated power supply, keep the input and output traces short and away from noise sources, and use shielding or twisted pairs for the input and output cables.
  • Yes, the 300S14-U can be used in a single-supply application by connecting the VEE pin to ground and using a voltage divider to generate a virtual ground.

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