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MAX17014A
Low-Cost Multiple-Output Power Supply for LCD TVs

Multiple-Output Power-Supply Controller Generates All the Supply Rails for TFT-LCD TV Applications


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Status
Active: In Production.

Description
FULL DATA SHEET (PDF, 628kB)
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The MAX17014A multiple-output power-supply controller generates all the supply rails for thin-film transistor (TFT) liquid-crystal display (LCD) panels in TVs and monitors operating from a regulated 12V input. It includes a step-down and a step-up regulator, a positive and a negative charge pump, two operational amplifiers, and a Dual Mode™ logic-controlled high-voltage switch control block. The MAX17014A can operate from 8V to 16.5V input voltages and is optimized for LCD TV panel and LCD monitor applications running directly from 12V supplies.

The step-up and step-down regulators feature internal power MOSFETs and high-frequency operation allowing the use of small inductors and capacitors, resulting in a compact solution. Both switching regulators use fixed-frequency current-mode control architectures, providing fast load-transient response and easy compensation. A current-limit function for internal switches and output-fault shutdown protect the step-up and step-down power supplies against fault conditions. The MAX17014A provides soft-start functions to limit inrush current during startup. The MAX17014A provides adjustable power-up timing.

The positive and negative charge-pump regulators provide TFT gate driver supply voltages. Both output voltages can be adjusted with external resistive voltage-dividers. The switch control block allows the manipulation of the positive TFT gate driver voltage.

The MAX17014A includes two high-current operational amplifiers designed to drive the LCD backplane (VCOM). The amplifier features high output current (±150mA), fast slew rate (100V/µs), wide bandwidth (20MHz), and rail-to-rail inputs and outputs. A series p-channel MOSFET is integrated to sequence power to AVDD after the MAX17014A has proceeded through normal startup, and provides True Shutdown™.

The MAX17014A is available in a small (7mm x 7mm), low-profile (0.8mm), 48-pin thin QFN package and operates over a -40°C to +85°C temperature range.

Key Features   Applications/Uses
  • Optimized for 10.8V to 13.2V Input Supply
  • 8V to 16.5V Input Supply Range
  • Selectable Frequency (600kHz/1.2MHz)
  • Current-Mode Step-Up Regulator
    • Built-In 20V, 3.7A, 110mΩ n-Channel MOSFET
    • High-Accuracy Output Voltage (1%)
    • True Shutdown
    • Fast Load-Transient Response
    • High Efficiency
    • 3ms Internal Soft-Start
  • Current-Mode Step-Down Regulator
    • Built-In 20V, 2.5A, 120mΩ n-Channel MOSFET
    • Fast Load-Transient Response
    • Adjustable Output Voltage Down to 1.25V
    • Skip Mode at Light Load
    • High Efficiency
    • 3ms Internal Soft-Start
  • Adjustable Positive and Negative Charge-Pump Regulators
  • Soft-Start and Timer-Delay Fault Latch for All Outputs
  • Logic-Controlled High-Voltage Integrated Switches with Adjustable Delay
  • Two High-Speed Operational Amplifiers
    • ±150mA Short-Circuit Current
    • 100V/µs Slew Rate
    • 20MHz, -3dB Bandwidth
  • 120mΩ p-Channel FET for AVDD Sequencing
  • Input Undervoltage Lockout and Thermal-Overload Protection
  • 48-Pin, 7mm x 7mm Thin QFN Package

 
  • LCD Monitor Panels
  • LCD TV Panels

    Key Specifications:  Multifunction PMICs
    Part Number Primary Topology Monitor/Control Features DC-DC/Power Features LCD/LED/Flash/CCD Features VIN
    (V)
    VIN
    (V)
    VOUT
    (V)
    VOUT
    (V)
    Max. IOUT
    (A)
    Max. IOUT
    (A)
    Oper. Freq.
    (kHz)
    Package/Pins Smallest Available Pckg.
    (mm2)
    min max min max max w/pins
    MAX17014A 
    Step-Down
    Step-Up
    Output OVP
    Shutdown
    Adj. Frequency
    Current Limit
    Fixed Freq./PWM
    Internal Pwr. FETs
    Soft Start
    TFT Bias
    VCOM Buffer
    8 16.5 1.25 20 2.5 2.5 1200
    TQFN/48
    50
    See All Multifunction PMICs (83)

    Diagram
    MAX17014A: Typical Simplified Circuit
    Typical Simplified Circuit

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    Document Ref.: 19-4192; Rev 0; 2008-09-08
    This page last modified: 2009-07-29


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