PMIC - Voltage Regulators - DC DC Switching Regulators

Image Part Number Description / PDF Quantity Rfq
TPS60212DGSRG4

TPS60212DGSRG4

Texas Instruments

IC REG CHARGE PUMP 3.3V 10VSSOP

0

LM2597HVM-3.3/NOPB

LM2597HVM-3.3/NOPB

Texas Instruments

IC REG BUCK 3.3V 500MA 8SOIC

9241

TPS62182YZFT

TPS62182YZFT

Texas Instruments

IC REG BUCK 3.3V 6A 24DSBGA

285

TPS60140PWP

TPS60140PWP

Texas Instruments

IC REG CHARGE PUMP 5V 20HTSSOP

350

TPIC74101QPWPRQ1

TPIC74101QPWPRQ1

Texas Instruments

TPIC74101-Q1 480KHZ 1.5V TO 40V,

9726

LM2735XMY/NOPB

LM2735XMY/NOPB

Texas Instruments

IC REG MULT CONFG ADJ 2.1A 8MSOP

305

TPS62080ADSGR

TPS62080ADSGR

Texas Instruments

IC REG BUCK ADJ 1.2A 8WSON

2582

LM2832XSD/NOPB

LM2832XSD/NOPB

Texas Instruments

IC REG BUCK ADJUSTABLE 2A 6WSON

1062

LMR10530YSD/NOPB

LMR10530YSD/NOPB

Texas Instruments

IC REG BUCK ADJUSTABLE 3A 10WSON

1595

TLV62095RGTR

TLV62095RGTR

Texas Instruments

IC REG BUCK ADJUSTABLE 4A 16VQFN

0

TPS51367RVER

TPS51367RVER

Texas Instruments

IC REG BUCK ADJ/PROG 12A 28VQFN

3061

TPS55340QRTERQ1

TPS55340QRTERQ1

Texas Instruments

IC REG BOOST ADJ 5.25A 16WQFN

0

LM2596T-ADJ/LF02

LM2596T-ADJ/LF02

Texas Instruments

IC REG BUCK ADJ 3A TO220-5

281

TPS622312DRYR

TPS622312DRYR

Texas Instruments

IC REG BUCK 2V 500MA 6SON

0

LM2673S-ADJ/NOPB

LM2673S-ADJ/NOPB

Texas Instruments

IC REG BUCK ADJ 3A TO263-7

3149990

TLV62150RGTR

TLV62150RGTR

Texas Instruments

IC REG BUCK ADJUSTABLE 1A 16QFN

9000

TPS54560QDDAQ1

TPS54560QDDAQ1

Texas Instruments

IC REG BCK SPLIT RAIL ADJ 8SOPWR

165925

LM2674MX-5.0/NOPB

LM2674MX-5.0/NOPB

Texas Instruments

IC REG BUCK 5V 500MA 8SOIC

1967

LM2574HVM-3.3/NOPB

LM2574HVM-3.3/NOPB

Texas Instruments

IC REG BUCK 3.3V 500MA 14SOIC

1932

TPS62262DRVR

TPS62262DRVR

Texas Instruments

IC REG BUCK 1.2V 600MA 6SON

17

PMIC - Voltage Regulators - DC DC Switching Regulators

1. Overview

DC-DC switching regulators are electronic circuits that efficiently convert direct current (DC) from one voltage level to another through switching techniques. By rapidly turning semiconductor switches (e.g., MOSFETs) on/off and modulating the duty cycle, these regulators achieve high efficiency (often >90%) compared to linear regulators. They are critical in modern electronics for power management, enabling compact designs, thermal optimization, and extended battery life in portable devices. Their ability to step-up, step-down, or invert voltages makes them indispensable in applications ranging from consumer electronics to industrial systems.

2. Main Types and Functional Classification

TypeFunctional CharacteristicsApplication Examples
Buck (Step-Down)Reduces input voltage to a lower regulated outputProcessor cores, LED drivers, battery chargers
Boost (Step-Up)Increases input voltage to a higher regulated outputUSB On-The-Go, battery-powered devices, backlighting
Buck-BoostInverts or adjusts voltage to match load requirementsPower-over-Ethernet, automotive systems
Cuk ConverterProvides smooth input/output currents with inversionMedical devices, precision instrumentation
SEPICEnables output voltage above/below input with DC isolationAutomotive infotainment, solar inverters
Zeta ConverterDelivers non-inverted output with input-output isolationTelecom power systems, industrial sensors

3. Structure and Composition

A typical DC-DC switching regulator integrates the following components:

  • Power Switches: MOSFETs or bipolar transistors for high-efficiency switching
  • Inductor: Stores energy during switching cycles (e.g., coupled inductors for isolation)
  • Capacitors: Input/output filtering to suppress ripple (ceramic or polymer types)
  • PWM Controller: Regulates duty cycle via feedback loops (voltage/current mode control)
  • Protection Circuits: Overcurrent, overtemperature, and undervoltage lockout (UVLO)

Advanced packages like QFN (Quad Flat No-leads) and BGA (Ball Grid Array) enable miniaturization, while synchronous rectification reduces conduction losses.

4. Key Technical Specifications

ParameterDescriptionImportance
Input Voltage RangeOperating voltage limits (e.g., 2.5V 40V)Determines compatibility with power sources
Output Voltage RangeAdjustable/setpoint voltage (e.g., 0.6V 5.5V)Matches load requirements
Output CurrentMaximum load current (e.g., 1A 20A)Dictates power delivery capability
EfficiencyRatio of output/input power (e.g., 85% 97%)Impacts thermal performance and battery life
Switching FrequencyOperating frequency (e.g., 100kHz 5MHz)Affects component size and EMI
Ripple/NoiseOutput voltage fluctuations (e.g., <30mVpp)Critical for noise-sensitive circuits

5. Application Areas

  • Consumer Electronics: Smartphones (PMIC integration), laptops, wearables
  • Automotive: Battery management systems, ADAS sensors, infotainment units
  • Industrial: PLCs, motor drives, IoT edge devices
  • Telecommunications: 5G base stations, optical transceivers, routers
  • Renewables: Solar micro-inverters, energy storage systems

6. Leading Manufacturers and Products

ManufacturerProduct SeriesKey Features
Texas InstrumentsLM5118Synchronous buck-boost controller, 6V 40V input
STMicroelectronicsL69833.5V 38V input, 3A output, automotive qualified
InfineonTDA3608High-current boost converter for industrial lighting
ON SemiconductorNCP317040V input, 7A output, current-mode control
Analog DevicesLTC389160V input, low quiescent current, rail-to-rail operation

7. Selection Guidelines

Key considerations during component selection:

  • Define input/output voltage and current requirements
  • Prioritize efficiency targets (>90% for battery-operated systems)
  • Select switching frequency based on EMI constraints and component size
  • Verify thermal management capabilities (e.g., package thermal resistance)
  • Assess protection features (OCP, OTP, soft-start)
  • Evaluate PCB layout complexity (e.g., external MOSFET requirements)
  • Balance cost vs. integration level (integrated FETs vs. controllers)

Example: For a 12V-to-3.3V/5A telecom power supply, select a synchronous buck regulator with 40V rating, >92% efficiency, and remote sensing.

8. Industry Trends

Emerging trends shaping DC-DC regulator development include:

  • Wide Bandgap Integration: GaN/SiC devices enabling >1000V operation and 5MHz+ switching
  • Smart Power Management: Digital control via PMBus for dynamic voltage scaling
  • Ultra-Low Quiescent Current: <10 A IQ for always-on IoT sensors
  • Advanced Packaging: 3D stacking and embedded die solutions for <100 m form factors
  • EMI Reduction: Spread spectrum frequency modulation and shielding innovations
  • Functional Safety: ISO 26262 compliance for automotive ASIL-D systems

Market demand is projected to grow at 7.2% CAGR through 2030, driven by EVs, 5G infrastructure, and edge computing.

RFQ BOM Call Skype Email
Top