SLVSIN9
June 2026
LM25192-Q1
PRODUCTION DATA
1
1
Features
2
Applications
3
Description
4
Related Products
5
Pin Configuration and Functions
6
Specifications
6.1
Absolute Maximum Ratings
6.2
ESD Ratings
6.3
Recommended Operating Conditions
6.4
Thermal Information
6.5
Electrical Characteristics
6.6
Timing Requirements for the Serial Control Bus
6.7
Typical Characteristics
7
Detailed Description
7.1
Overview
7.2
Functional Block Diagram
7.3
Feature Description
7.3.1
Input Voltage Range (VIN)
7.3.2
High-Voltage Bias Supply Regulators (VCC, VDDA)
7.3.3
Enable (EN)
7.3.4
Switching Frequency
7.3.5
Dual Random Spread Spectrum (DRSS)
7.3.6
Soft Start
7.3.7
Output Voltage
7.3.8
Minimum Controllable On-Time
7.3.9
Dual Loop Architecture
7.3.9.1
Voltage Loop Error Amplifier
7.3.9.2
Current Loop Error Amplifier
7.3.10
Programmable ILIM
7.3.11
IOUT Monitor
7.3.12
Cable Drop Compensation
7.3.13
Slope Compensation
7.3.14
Shunt Current Sensing
7.3.15
Hiccup Mode Current Limiting
7.3.16
Device Configuration (CNFG)
7.3.17
Pulse Frequency Modulation (PFM) / Synchronization
7.3.18
Out-of-Audio Operation
7.3.19
Thermal Shutdown (TSD)
7.4
Device Functional Modes
7.4.1
Shutdown Mode
7.4.2
Standby Mode
7.4.3
Ready Mode
7.4.4
Active Mode
7.4.5
Sleep Mode
8
Programming
8.1
I2C Bus Operation
8.2
Clock Stretching
8.3
Data Transfer Formats
8.4
Single READ from a Defined Register Address
8.5
Sequential READ Starting from a Defined Register Address
8.6
Single WRITE to a Defined Register Address
8.7
Sequential WRITE Starting at a Defined Register Address
9
LM25192-Q1 Registers
10
Application and Implementation
10.1
Application Information
10.1.1
Powertrain Components
10.1.1.1
Buck Inductor
10.1.1.2
Output Capacitors
10.1.1.3
Input Capacitors
10.1.1.4
Power MOSFETs
10.1.1.5
EMI Filter
10.1.2
Error Amplifier and Compensation
10.2
Typical Application
10.2.1
High Efficiency, Wide Input, 400kHz, Synchronous Buck Regulator
10.2.1.1
Design Requirements
10.2.1.2
Detailed Design Procedure
10.2.1.2.1
Buck Inductor
10.2.1.2.2
Current-Sense Resistance
10.2.1.2.3
Output Capacitors
10.2.1.2.4
Input Capacitors
10.2.1.2.5
Compensation Components
10.2.1.3
Application Curves
10.3
Power Supply Recommendations
10.4
Layout
10.4.1
Layout Guidelines
10.4.1.1
Power Stage Layout
10.4.1.2
Gate-Drive Layout
10.4.1.3
PWM Controller Layout
10.4.1.4
Thermal Design and Layout
10.4.1.5
Ground Plane Design
10.4.2
Layout Example
11
Device and Documentation Support
11.1
Device Support
11.1.1
Development Support
11.2
Documentation Support
11.2.1
Related Documentation
11.2.1.1
PCB Layout Resources
11.2.1.2
Thermal Design Resources
11.3
Receiving Notification of Documentation Updates
11.4
Support Resources
11.5
Trademarks
11.6
Electrostatic Discharge Caution
11.7
Glossary
12
Revision History
13
Mechanical, Packaging, and Orderable Information
封装选项
机械数据 (封装 | 引脚)
RGY|19
MPQF777A
散热焊盘机械数据 (封装 | 引脚)
11.2.1
Related Documentation
For related documentation, see the following:
Texas Instruments,
Improve High-current DC/DC Regulator Performance for Free with Optimized Power Stage Layout
application brief
Application notes:
Texas Instruments,
AN-2162 Simple Success with Conducted EMI from DC-DC Converters
Texas Instruments,
Maintaining Output Voltage Regulation During Automotive Cold-Crank with LM5140-Q1 Dual Synchronous Buck Controller
Texas Instruments,
Reduce Buck Converter EMI and Voltage Stress by Minimizing Inductive Parasitics
analog design journal
White papers:
Texas Instruments,
An Overview of Conducted EMI Specifications for Power Supplies
Texas Instruments,
An Overview of Radiated EMI Specifications for Power Supplies
Texas Instruments,
Valuing Wide V
IN
, Low EMI Synchronous Buck Circuits for Cost-driven, Demanding Applications