Analog Devices Inc. LT8653S Dual Step-Down Regulators

Analog Devices Inc. LT8653S Dual Step-Down Regulators deliver up to 2A of continuous current from both channels and support loads up to 3A. The LT8653S devices feature the second-generation Silent Switcher®2 architecture to minimize EMI emissions. The regulators deliver high efficiency at high switching frequencies. This includes integrating bypass capacitors to optimize high-frequency current loops. By eliminating layout sensitivity, it's easy to achieve the advertised EMI performance.

Features

  • Silent Switcher 2 architecture
    • Ultralow EMI on any PCB
    • Eliminates PCB layout sensitivity
    • Internal bypass capacitors reduce radiated EMI
    • Optional spread spectrum modulation
  • 2A DC from each channel simultaneously
  • Up to 3A on either channel
  • Ultralow quiescent current Burst Mode® operation
    • 6.2μA IQ regulating 12VIN to 5VOUT1 and 3.3VOUT2
    • Output ripple of <10mVP–P
  • Optional external VC pin with a fast transient response
  • Forced continuous mode
  • High efficiency at high frequency
  • 94.1% efficiency at 1A, 5VOUT from 12VIN at 2MHz
  • 5V, 3.3V, and 1.8V pin-selectable fixed output voltages
  • Fast 30ns minimum switch-on time
  • Wide 3.0V to 42V input voltage range
  • Adjustable and synchronizable from 300kHz to 3MHz
  • Fixed output pin strap options
  • Internal 2MHz fSW with fast internal compensation
  • Small 4mm x 3mm 20-pin LQFN package
  • AEC-Q100 qualified for automotive applications

Applications

  • General purpose step-down
  • Automotive supplies
  • Industrial supplies

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TYPICAL APPLICATION

Analog Devices Inc. LT8653S Dual Step-Down Regulators

Design Note

Meet the demanding power requirements of automotive and industrial environments.

The LT8653S is a dual-channel, 2A, monolithic, synchronous step-down regulator with a 3V to 42V input voltage range. Silent Switcher® 2 technology enables the LT8653S to simultaneously operate at high frequency and high efficiency with exceptional EMI performance.

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Publicado: 2020-02-03 | Actualizado: 2024-09-03