AUTOMOTIVE Power Management ICs 1,493

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Part RoHS Manufacturer Other IC type Temperature Grade No. of Terminals Package Code Package Shape Surface Mount Total Dose (V) Maximum Switching Frequency Package Body Material Maximum Supply Current (Isup) Maximum Output Current Trim or Adjustable Output (V) No. of Functions No. of Channels Technology Screening Level Nominal Bandwidth Terminal Form Main Out Ripple Voltage Control Technique Nominal Negative Supply Voltage (Vsup) Nominal Supply Voltage (Vsup) Power Supplies (V) Switcher Config Package Style (Meter) Package Equivalence Code Sub-Category Terminal Pitch Maximum Operating Temperature Minimum Output Voltage Control Mode Protection(s) Maximum Total Power Output Minimum Operating Temperature Terminal Finish Maximum Output Voltage Terminal Position JESD-30 Code Output (V) Moisture Sensitivity Level (MSL) Maximum Supply Voltage (Vsup) Maximum Seated Height Width (mm) Qualification Normal Position (V) Minimum Supply Voltage (Vsup) Nominal Input Voltage Additional Features Minimum Input Voltage Maximum Negative Input Voltage JESD-609 Code Switching (V) Maximum Time At Peak Reflow Temperature (s) No. of Outputs Peak Reflow Temperature (C) Maximum Switch-on Time Maximum On-state Resistance (Ron) Nominal Threshold Voltage (V) Length Adjustable Threshold Nominal Output Voltage Maximum Input Voltage

BQ79616PAPTQ1

Texas Instruments

POWER SUPPLY SUPPORT CIRCUIT

AUTOMOTIVE

125 Cel

-40 Cel

NICKEL PALLADIUM GOLD

3

e4

30

260

INA238AIDGSR

Texas Instruments

POWER SUPPLY SUPPORT CIRCUIT

AUTOMOTIVE

10

TSSOP

SQUARE

YES

PLASTIC/EPOXY

1

1

BALL

3.3 V

SMALL OUTLINE, THIN PROFILE, SHRINK PITCH

TSSOP10,.19,20

.5 mm

125 Cel

-40 Cel

MATTE TIN

DUAL

S-PDSO-G10

2

5.5 V

1.1 mm

3 mm

2.7 V

e3

30

260

3 mm

NO

LP873345RHDT

Texas Instruments

POWER SUPPLY SUPPORT CIRCUIT

AUTOMOTIVE

28

HVQCCN

SQUARE

YES

2200 kHz

PLASTIC/EPOXY

3 A

1

5

NO LEAD

3.7 V

CHIP CARRIER, HEAT SINK/SLUG, VERY THIN PROFILE

LCC28,.2SQ,20

.5 mm

125 Cel

-40 Cel

MATTE TIN

QUAD

S-PQCC-N28

2

5.5 V

1 mm

5 mm

2.8 V

2.8 V

e3

30

4

260

5 mm

YES

5.5 V

TPS65941111RWERQ1

Texas Instruments

POWER SUPPLY MANAGEMENT CIRCUIT

AUTOMOTIVE

56

HVQCCN

SQUARE

YES

2400 kHz

PLASTIC/EPOXY

14 A

1

20

AEC-Q100

NO LEAD

3.3 V

CHIP CARRIER, HEAT SINK/SLUG, VERY THIN PROFILE

LCC56,.32SQ,20

.5 mm

125 Cel

-40 Cel

NICKEL PALLADIUM GOLD SILVER

QUAD

S-PQCC-N56

3

5.5 V

.9 mm

8 mm

2.8 V

e4

30

9

260

2.75

8 mm

YES

TPS65941212RWERQ1

Texas Instruments

POWER SUPPLY MANAGEMENT CIRCUIT

AUTOMOTIVE

56

HVQCCN

SQUARE

YES

2400 kHz

PLASTIC/EPOXY

14 A

1

20

AEC-Q100

NO LEAD

3.3 V

CHIP CARRIER, HEAT SINK/SLUG, VERY THIN PROFILE

LCC56,.32SQ,20

.5 mm

125 Cel

-40 Cel

NICKEL PALLADIUM GOLD SILVER

QUAD

S-PQCC-N56

3

5.5 V

.9 mm

8 mm

2.8 V

e4

30

9

260

2.75

8 mm

YES

Power Management ICs

Power Management ICs (PMICs) are electronic components that are used to regulate and manage the power supply in electronic systems. They are used to optimize power usage, reduce power consumption, and increase battery life in portable devices.

PMICs typically include a range of components such as voltage regulators, power switches, and battery management circuits. Voltage regulators are used to maintain a stable voltage output despite fluctuations in the input voltage or load. Power switches are used to control the flow of power in a circuit, and battery management circuits are used to monitor and manage the charging and discharging of batteries.

PMICs are used in a wide range of applications, including mobile phones, laptops, tablets, and other portable devices. They are also used in automotive electronics, power supplies, and industrial automation systems. PMICs play a critical role in managing power consumption in electronic systems, reducing energy waste and extending battery life.

One of the key advantages of PMICs is their ability to provide multiple functions in a single package, reducing the number of components needed in a system and simplifying design. They also help to improve system reliability by protecting against overvoltage, overcurrent, and overtemperature conditions.