SNOSDE6C
December 2022 – August 2025
LM74900-Q1
,
LM74910-Q1
,
LM74910H-Q1
PRODUCTION DATA
1
1
Features
2
Applications
3
Description
4
Device Comparison Table
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
Switching Characteristics
6.7
Typical Characteristics
7
Parameter Measurement Information
8
Detailed Description
8.1
Overview
8.2
Functional Block Diagram
8.3
Feature Description
8.3.1
Charge Pump
8.3.2
Dual Gate Control (DGATE, HGATE)
8.3.2.1
Reverse Battery Protection (A, C, DGATE)
8.3.2.2
Load Disconnect Switch Control (HGATE, OUT)
8.3.3
Overcurrent Protection (CS+, CS-, ILIM, IMON, TMR)
8.3.3.1
Pulse Overload Protection, Circuit Breaker
8.3.3.2
Overcurrent Protection With Latch-Off
8.3.3.3
Short Circuit Protection (ISCP)
8.3.3.4
Analog Current Monitor Output (IMON)
8.3.4
Undervoltage Protection, Overvoltage Protection, and Battery Voltage Sensing (UVLO, OV, SW)
8.4
Device Functional Modes
8.4.1
Ultra Low IQ Shutdown (EN)
8.4.2
Low IQ SLEEP Mode (SLEEP)
9
Applications and Implementation
9.1
Application Information
9.2
Typical 12V Reverse Battery Protection Application
9.2.1
Design Requirements for 12V Battery Protection
9.2.2
Automotive Reverse Battery Protection
9.2.2.1
Input Transient Protection: ISO 7637-2 Pulse 1
9.2.2.2
AC Super Imposed Input Rectification: ISO 16750-2 and LV124 E-06
9.2.2.3
Input Micro-Short Protection: LV124 E-10
9.2.3
Detailed Design Procedure
9.2.3.1
Design Considerations
9.2.3.2
Charge Pump Capacitance VCAP
9.2.3.3
Input and Output Capacitance
9.2.3.4
Hold-Up Capacitance
9.2.3.5
Selection of Current Sense Resistor, RSNS
9.2.3.6
Selection of Scaling Resistor (RSET) and Short-Circuit Protection Setting Resistor (RSCP)
9.2.3.7
Overcurrent Limit (ILIM), Circuit Breaker Timer (TMR), and Current Monitoring Output (IMON) Selection
9.2.3.8
Overvoltage Protection and Battery Monitor
9.2.4
MOSFET Selection: Blocking MOSFET Q1
9.2.5
MOSFET Selection: Hot-Swap MOSFET Q2
9.2.6
TVS Selection
9.2.7
Application Curves
9.3
Addressing Automotive Input Reverse Battery Protection Topologies With LM749x0-Q1
9.4
Power Supply Recommendations
9.4.1
Transient Protection
9.4.2
TVS Selection for 12V Battery Systems
9.5
Layout
9.5.1
Layout Guidelines
9.5.2
Layout Example
10
Device and Documentation Support
10.1
Third-Party Products Disclaimer
10.2
Receiving Notification of Documentation Updates
10.3
Support Resources
10.4
Trademarks
10.5
Electrostatic Discharge Caution
10.6
Glossary
11
Revision History
12
Mechanical, Packaging, and Orderable Information
1
Features
AEC-Q100 qualified for automotive applications
Device temperature grade 1:
–40°C to +125°C ambient operating temperature range
Functional Safety-Capable
Documentation available to aid functional safety system design
3V to 65V input range
74V Absolute Maximum Rating for LM74910H-Q1
Reverse input protection down to –65V
Drives external back-to-back N-Channel MOSFETs in common drain configuration
Ideal diode operation with 10.5mV A to C forward voltage drop regulation
Low reverse detection threshold (–10.5mV) with fast turn off response (0.5µs)
20mA peak gate (DGATE) turn on current
2.6A peak DGATE turnoff current
Adjustable overcurrent and short circuit protection
Analog current monitor output with 2% accuracy for LM74910H-Q1
Adjustable overvoltage and undervoltage protection
SLEEP mode OCP Retry in LM74910H-Q1
Low 2.5µA shutdown current (EN=Low)
SLEEP mode with 6µA current (EN=High,
SLEEP
=Low)
Meets automotive ISO7637 transient requirements with a suitable TVS diode
Available in space saving 24-pin VQFN package