SLVSIF4 September   2026 TPS481HS04-Q1

ADVANCE INFORMATION  

  1.   1
  2. 1 Features
  3. 2 Applications
  4. 3 Description
  5. 4 Pin Configuration and Functions
  6. 5 Specifications
    1. 5.1 Absolute Maximum Ratings
    2. 5.2 ESD Ratings
    3. 5.3 Recommended Operating Conditions
    4. 5.4 Thermal Information
    5. 5.5 Electrical Characteristics
    6. 5.6 SPI Timing Requirements
    7. 5.7 Switching Characteristics
  7. 6 Parameter Measurement Information
  8. 7 Detailed Description
    1. 7.1 Overview
    2. 7.2 Functional Block Diagram
    3. 7.3 Feature Description
      1. 7.3.1 Driving Capacitive, Resistive and Inductive Loads
      2. 7.3.2 Protection Mechanisms
        1. 7.3.2.1 Overcurrent Protection
          1. 7.3.2.1.1 Inrush Period - Overcurrent Protection
          2. 7.3.2.1.2 Overcurrent Protection - Steady State Operation
          3. 7.3.2.1.3 Programmable Fuse Protection
          4. 7.3.2.1.4 Immediate Shutdown Overcurrent Protection (IOCP)
        2. 7.3.2.2 Output Disable Function (OUT_DIS)
        3. 7.3.2.3 Thermal Shutdown
        4. 7.3.2.4 Reverse Battery
      3. 7.3.3 Diagnostic Mechanisms
        1. 7.3.3.1 Integrated ADC
        2. 7.3.3.2 Analog and Digital Current Sense Output
        3. 7.3.3.3 Output Voltage Measurement
        4. 7.3.3.4 MOSFET Temperature Measurement
        5. 7.3.3.5 VBB Voltage Measurement
        6. 7.3.3.6 VOUT Short-to-Battery and Open-Load
          1. 7.3.3.6.1 Measurement With Channel Output (FET) Enabled
          2. 7.3.3.6.2 Detection With Channel Output Disabled
        7. 7.3.3.7 VOUT Short-to-Battery or FET Short Detection For Power at All Times (PAAT) Loads
      4. 7.3.4 Fault Indication (FLT / WAKE)
      5. 7.3.5 SPI Mode Operation
    4. 7.4 Device Functional Modes
      1. 7.4.1 State Diagram
      2. 7.4.2 Power Down
      3. 7.4.3 SLEEP
      4. 7.4.4 Low Power Mode (LPM)
      5. 7.4.5 CONFIG or ACTIVE Mode
      6. 7.4.6 LIMPHOME Mode
    5. 7.5 TPS481HS04-Q1 Pre-production Silicon Limitations
      1. 7.5.1 SDO Pin Tristate Discrete Workaround (Only for parallel SPI configuration not for daisy chain)
  9. 8 Register Maps
    1. 8.1 TPS481HS04-Q1 Registers
    2. 8.2 EEPROM (NVM) Overview
  10. 9 Application and Implementation
    1. 9.1 Application Information
    2. 9.2 Typical Application
      1. 9.2.1 Design Requirements
      2. 9.2.2 Detailed Design Procedure
      3. 9.2.3 Application Curves
    3. 9.3 Power Supply Recommendations
    4. 9.4 Layout
      1. 9.4.1 Layout Guidelines
      2. 9.4.2 Layout Example
  11. 10Device and Documentation Support
    1. 10.1 Documentation Support
    2. 10.2 Receiving Notification of Documentation Updates
    3. 10.3 Support Resources
    4. 10.4 Trademarks
    5. 10.5 Electrostatic Discharge Caution
    6. 10.6 Glossary
  12. 11Revision History
  13. 12Mechanical, Packaging, and Orderable Information
    1. 12.1 Tape and Reel Information
    2. 12.2 Mechanical Data

SLEEP

The TPS481HS04-Q1 device offers a SLEEP mode where the device is placed into an ultra low current consumption state. When the device is in SLEEP mode, both channels are OFF, registers are cleared, and all digital circuits are powered off. The device will transition to this state if VBB < VBB_UVLO and VDD < VDD_UVLO. The device can manually be put into SLEEP mode by writing a 1 to the SLEEP bit in the SLEEP register.

The device can be woken from the SLEEP mode through the CS pin going low. There are two methods to wake the device up from SLEEP through the CS pin:

  1. Pulse the CS pin low for t < tREADY
  2. Hold the CS pin low for at least tREADY and continue to hold CS pin low through the first SPI transaction

Both methods above will result in the device waking up without a SPI_ERR fault. A dummy SPI transaction could be used to sastify method #1 if the dummy SPI transaction is completed in t < tREADY. Figure 7-20 below shows examples of the two proper wakeup scenarios which will result in no SPI_ERR fault and one improper wakeup scenario which will result in a SPI_ERR fault.

Upon wakeup from SLEEP mode, the values in the registers will be set to their reset values detailed in the register map below. Additionally, the FLT/WAKE pin will be asserted low and the POR, VDD_UVLO, and VBB_UVLO fault bits will be asserted and will be cleared when the FAULT_GLOBAL register is read if none of these faults currently exist when read.

TPS481HS04-Q1 Startup Communication TimingFigure 7-20 Startup Communication Timing