SNVSCT6 July   2026 LM72630-Q1

PRODUCTION DATA  

  1.   1
  2. Features
  3. Applications
  4. Description
  5. Related Products
  6. Pin Configuration and Functions
  7. Specifications
    1. 6.1 Absolute Maximum Ratings
    2. 6.2 ESD Ratings
    3. 6.3 Recommended Operating Conditions
    4. 6.4 Thermal Information
    5. 6.5 Electrical Characteristics
    6. 6.6 Timing Requirements for the Serial Control Bus
    7. 6.7 Typical Characteristics
  8. Detailed Description
    1. 7.1 Overview
    2. 7.2 Functional Block Diagram
    3. 7.3 Feature Description
      1. 7.3.1  Input Voltage Range (VIN)
      2. 7.3.2  High-Voltage Bias Supply Regulators (VCC, VDDA)
      3. 7.3.3  Enable (EN/UVLO)
      4. 7.3.4  Switching Frequency
      5. 7.3.5  Dual Random Spread Spectrum (DRSS)
      6. 7.3.6  Soft Start
      7. 7.3.7  Output Voltage and Output Voltage Slew Rate
      8. 7.3.8  Minimum Controllable On-Time
      9. 7.3.9  Dual Loop Architecture
        1. 7.3.9.1 Voltage Loop Error Amplifier
        2. 7.3.9.2 Current Loop Error Amplifier
      10. 7.3.10 Programmable OVP
      11. 7.3.11 Programmable ILIM
      12. 7.3.12 IOUT Monitor
      13. 7.3.13 Cable Drop Compensation
      14. 7.3.14 Slope Compensation
      15. 7.3.15 Shunt Current Sensing
      16. 7.3.16 Hiccup Mode Current Limiting
      17. 7.3.17 Device Configuration (CNFG)
      18. 7.3.18 Pulse Frequency Modulation (PFM) / Synchronization
      19. 7.3.19 Out-of-Audio Operation
      20. 7.3.20 Thermal Shutdown (TSD)
    4. 7.4 Device Functional Modes
      1. 7.4.1 Shutdown Mode
      2. 7.4.2 Standby Mode
      3. 7.4.3 Ready Mode
      4. 7.4.4 Active Mode
      5. 7.4.5 Sleep Mode
    5. 7.5 Programming
      1. 7.5.1 I2C Bus Operation
      2. 7.5.2 Clock Stretching
      3. 7.5.3 Data Transfer Formats
      4. 7.5.4 Single READ from a Defined Register Address
      5. 7.5.5 Sequential READ Starting from a Defined Register Address
      6. 7.5.6 Single WRITE to a Defined Register Address
      7. 7.5.7 Sequential WRITE Starting at a Defined Register Address
  9. LM72630-Q1 Registers
  10. Application and Implementation
    1. 9.1 Application Information
      1. 9.1.1 Power Train Components
        1. 9.1.1.1 Buck Inductor
        2. 9.1.1.2 Output Capacitors
        3. 9.1.1.3 Input Capacitors
        4. 9.1.1.4 EMI Filter
      2. 9.1.2 Error Amplifier and Compensation
      3. 9.1.3 Maximum Ambient Temperature
        1. 9.1.3.1 Derating Curves
    2. 9.2 Typical Application
      1. 9.2.1 High Efficiency, Wide Input, 400kHz, Synchronous Buck Regulator
        1. 9.2.1.1 Design Requirements
        2. 9.2.1.2 Detailed Design Procedure
          1. 9.2.1.2.1 Custom Design With WEBENCH® Tools
          2. 9.2.1.2.2 Buck Inductor
          3. 9.2.1.2.3 Current-Sense Resistance
          4. 9.2.1.2.4 Output Capacitors
          5. 9.2.1.2.5 Input Capacitors
          6. 9.2.1.2.6 Compensation Components
        3. 9.2.1.3 Application Curves
    3. 9.3 Power Supply Recommendations
    4. 9.4 Layout
      1. 9.4.1 Layout Guidelines
        1. 9.4.1.1 Thermal Design and Layout
      2. 9.4.2 Layout Example
  11. 10Device and Documentation Support
    1. 10.1 Device Support
      1. 10.1.1 Development Support
        1. 10.1.1.1 Custom Design With WEBENCH® Tools
    2. 10.2 Documentation Support
      1. 10.2.1 Related Documentation
        1. 10.2.1.1 PCB Layout Resources
        2. 10.2.1.2 Thermal Design Resources
    3. 10.3 Receiving Notification of Documentation Updates
    4. 10.4 Support Resources
    5. 10.5 Trademarks
    6. 10.6 Electrostatic Discharge Caution
    7. 10.7 Glossary
  12. 11Revision History
  13. 12Mechanical, Packaging, and Orderable Information

Design Requirements

Table 9-1 shows the intended input, output, and performance parameters for this USB-C PD design example.

Table 9-1 Design Parameters
DESIGN PARAMETERVALUE
Input voltage range (steady-state)24V to 70V
Output voltageMaximum 20V
Output currentRated 3A
Switching frequencyTypical 400kHz

The switching frequency, the output regulation target in CV mode, and the output current limit in CC mode must be programmed by I2C before enabling the converter. In terms of control loop performance, the target loop crossover frequency is 30kHz with a phase margin greater than 50°.

The selected buck regulator powertrain components are cited in Table 9-2, and many of the components are available from multiple vendors. This design uses a low-DCR composite inductor.

Table 9-2 List of Materials for Application Circuit
REFERENCE DESIGNATOR QTY SPECIFICATION MANUFACTURER PART NUMBER
CIN 4 4.7μF, 100V, X7S, 1210, ceramic Murata GCM32DC72A475KE02L
CO 1 47µF, 25V, ±20%, SMD, aluminum - polymer Chemi-Con HHXC250ARA470MF61G
2 10µF, 25V, X7R, 1210, ceramic TDK CGA6P1X7R1E106M250AC
LO 1 22µH, 19.6mΩ, 13.2A, shielded Coilcraft XGL1010-223MED
RS 1 Shunt, 8mΩ, 0508, 1W Susumu KRL2012M-R008
U1 1 70V buck converter with I2C interface Texas Instruments LM72630-Q1