PMIC - Voltage Reference

Image Part Number Description / PDF Quantity Rfq
REF5025AIDRG4

REF5025AIDRG4

Texas Instruments

IC VREF SERIES 0.1% 8SOIC

0

TL4051CQDBZR

TL4051CQDBZR

Texas Instruments

IC VREF SHUNT 10V 0.5% SOT23-3

2983

LM185BYH-1.2/NOPB

LM185BYH-1.2/NOPB

Texas Instruments

IC VREF SHUNT 1% TO2

0

LM285LPR-2-5

LM285LPR-2-5

Texas Instruments

IC VREF SHUNT 1.5% TO92-3

6849

TL431ILPRE3

TL431ILPRE3

Texas Instruments

IC VREF SHUNT 36V 2.2% TO92-3

1650

LM336BDG4-2-5

LM336BDG4-2-5

Texas Instruments

IC VREF SHUNT 2% 8SOIC

1362

TLVH431ACDBZRG4

TLVH431ACDBZRG4

Texas Instruments

IC VREF SHUNT 18V 1% SOT23-3

0

REF3312AIDBZTG4

REF3312AIDBZTG4

Texas Instruments

IC VREF SERIES 0.15% SOT23-3

0

LM431BCM3/NOPB

LM431BCM3/NOPB

Texas Instruments

IC VREF SHUNT 37V 1% SOT23-3

38131

LM4050BIM3-4.1/NOPB

LM4050BIM3-4.1/NOPB

Texas Instruments

IC VREF SHUNT 0.2% SOT23-3

5559

REF6241IDGKT

REF6241IDGKT

Texas Instruments

IC VREF SERIES 0.05% 8VSSOP

95

LM4132BMFX-1.8/NOPB

LM4132BMFX-1.8/NOPB

Texas Instruments

IC VREF SERIES 0.1% SOT23-5

0

TLVH432ACPKG3

TLVH432ACPKG3

Texas Instruments

3 TERMINAL VOLTAGE REFERENCE

3000

LM385BXM-2.5/NOPB

LM385BXM-2.5/NOPB

Texas Instruments

IC VREF SHUNT 1.5% 8SOIC

0

REF1112AIDBZR

REF1112AIDBZR

Texas Instruments

IC VREF SHUNT 0.2% SOT23-3

0

LM4040CIM3-8.2/NOPB

LM4040CIM3-8.2/NOPB

Texas Instruments

IC VREF SHUNT 0.5% SOT23-3

1998

TLVH431BQPKG3

TLVH431BQPKG3

Texas Instruments

THREE TERMINAL VOLTAGE REFERENCE

2000

LM4128DMFX-4.1/NOPB

LM4128DMFX-4.1/NOPB

Texas Instruments

IC VREF SERIES 1% SOT23-5

0

LM4050BEM3-4.1/NOPB

LM4050BEM3-4.1/NOPB

Texas Instruments

IC VREF SHUNT 0.2% SOT23-3

930

LM4040B10IDBZT

LM4040B10IDBZT

Texas Instruments

IC VREF SHUNT 0.2% SOT23-3

251

PMIC - Voltage Reference

1. Overview

Voltage references are precision analog circuits that generate stable and accurate DC voltage levels. As critical components in Power Management Integrated Circuits (PMICs), they serve as calibration standards for analog-to-digital converters (ADCs), digital-to-analog converters (DACs), and power monitoring systems. Their stability against temperature variations, process shifts, and supply voltage fluctuations ensures measurement accuracy and system reliability in modern electronics.

2. Main Types and Functional Classification

TypeFunctional FeaturesApplication Examples
Bandgap ReferenceTemperature-compensated design using bipolar transistor characteristicsGeneral-purpose ADC/DAC calibration
Zener ReferenceHigh-voltage stability through reverse breakdown characteristicsIndustrial power supplies, test equipment
LDO Voltage ReferenceLow dropout voltage with high PSRR performanceBattery-powered devices, portable instruments
High-Precision ReferenceSub-0.1% initial accuracy with ppm-level temperature driftMedical imaging systems, precision sensors
Programmable ReferenceDigital control of output voltage via I2C/SPI interfacesAdaptive power systems, FPGA voltage scaling

3. Structure and Composition

Typical voltage reference architecture includes: - Primary reference source (bandgap or Zener diode) - Operational amplifier for voltage buffering - Temperature compensation circuitry - Output driver stage - Protective elements (ESD protection, current limiting) Fabricated using CMOS/BiCMOS processes, housed in SC70, SOT23, or TSSOP packages with 3-8 pins. Advanced designs integrate digital calibration registers and thermal shutdown functions.

4. Key Technical Specifications

ParameterDescriptionImportance
Initial AccuracyVoltage deviation at 25 C ( 0.02% to 1%)Determines system calibration baseline
Temperature CoefficientDrift rate over temperature range (1-100ppm/ C)Affects measurement stability
Output NoiseRMS noise voltage in 0.1-10Hz band (5 V to 100 V)Impacts ADC/DAC resolution
Load RegulationVoltage change with load current (0.01%/mA)Ensures stability under dynamic loads
Line RegulationVoltage change with supply voltage (0.05%/V)Maintains accuracy with supply variations

5. Application Areas

  • Communication: 5G base stations, optical transceivers, RF test equipment
  • Consumer: Smartphones, wearables, battery management systems
  • Industrial: Process control sensors, PLC modules, precision instrumentation
  • Automotive: Battery management systems (BMS), ADAS sensors, engine controllers
  • Medical: MRI systems, portable diagnostic devices, patient monitors

6. Leading Manufacturers and Products

ManufacturerProduct SeriesKey Features
TILM4040/LM40500.1% accuracy, 50ppm/ C tempco, 50mA output
Analog DevicesADR45xx0.02% initial accuracy, 3ppm/ C drift
Maxim IntegratedMAX6126Series voltage reference with enable pin
STMicroelectronicsLN3480Low-power consumption (380nA IQ)
ON SemiconductorNCP100Cost-effective solution for 12-bit ADCs

7. Selection Guidelines

Key selection criteria: - Required accuracy class (0.02% vs 1%) - Operating temperature range (-55 C to +125 C) - Power supply constraints (voltage headroom, quiescent current) - Package size and thermal dissipation capability - Long-term stability requirements (aging effects) - Cost vs performance trade-offs (e.g., programmable vs fixed) Example: For a 16-bit industrial ADC system, select a reference with <5ppm/ C tempco and <1 Vpp noise.

8. Industry Trends

  • Nanometer process integration enabling sub-1V references
  • Development of chopper-stabilized references for ultra-low drift
  • Increase in digital programmable references with I2C interfaces
  • Advancements in radiation-hardened references for aerospace
  • Reduced package sizes (0.65mm x 1.0mm WLCSP)
  • AI-enhanced self-calibration algorithms in smart references
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