Transistors - Bipolar (BJT) - Arrays

Image Part Number Description / PDF Quantity Rfq
NSS20200DMTTBG

NSS20200DMTTBG

Sanyo Semiconductor/ON Semiconductor

TRANS PNP 20V 2A 6WDFN

0

NSVUMC5NT1G

NSVUMC5NT1G

Sanyo Semiconductor/ON Semiconductor

TRANS NPN/PNP PREBIAS 0.15W SC88

0

EMX2DXV6T5

EMX2DXV6T5

Sanyo Semiconductor/ON Semiconductor

TRANS 2NPN 50V 0.1A SOT563

0

BC847BPDXV6T5G

BC847BPDXV6T5G

Sanyo Semiconductor/ON Semiconductor

TRANS NPN/PNP 45V 0.1A SOT563

0

MMPQ2222AR1

MMPQ2222AR1

Sanyo Semiconductor/ON Semiconductor

TRANS 4NPN 40V 0.5A 16SOIC

0

FFB2907A_D87Z

FFB2907A_D87Z

Sanyo Semiconductor/ON Semiconductor

TRANS 2PNP 60V 0.6A SC70-6

0

ECH8503-TL-H

ECH8503-TL-H

Sanyo Semiconductor/ON Semiconductor

TRANS 2PNP 50V 5A 8ECH

0

BC847CDXV6T5G

BC847CDXV6T5G

Sanyo Semiconductor/ON Semiconductor

TRANS 2NPN 45V 0.1A SOT563

0

BC856BDW1T1

BC856BDW1T1

Sanyo Semiconductor/ON Semiconductor

TRANS 2PNP 65V 0.1A SOT363

0

2SA1708T-YMH-AN

2SA1708T-YMH-AN

Sanyo Semiconductor/ON Semiconductor

TRANS BIPO NMP

0

FTM3725

FTM3725

Sanyo Semiconductor/ON Semiconductor

TRANS 4NPN 40V 1.2A 16SOIC

0

BC857CDW1T1

BC857CDW1T1

Sanyo Semiconductor/ON Semiconductor

TRANS 2PNP 45V 0.1A SOT363

0

NST3946DXV6T1

NST3946DXV6T1

Sanyo Semiconductor/ON Semiconductor

TRANS NPN/PNP 40V 0.2A SOT563

0

SCH2202-TL-E

SCH2202-TL-E

Sanyo Semiconductor/ON Semiconductor

TRANS 2NPN 15V 0.6A 6SCH

0

MBT3904DW1T1G-M01

MBT3904DW1T1G-M01

Sanyo Semiconductor/ON Semiconductor

TRANS NPN SS 40V 0.2A SC88

0

FFB3946

FFB3946

Sanyo Semiconductor/ON Semiconductor

TRANS NPN/PNP 40V 0.2A SC70-6

0

FMBM5551-SB16001

FMBM5551-SB16001

Sanyo Semiconductor/ON Semiconductor

TRANS NPN 160V 0.6A SSOT-6

0

FFB3906

FFB3906

Sanyo Semiconductor/ON Semiconductor

TRANS 2PNP 40V 0.2A SC70-6

0

MCH6536-TL-E

MCH6536-TL-E

Sanyo Semiconductor/ON Semiconductor

TRANS NPN/PNP 15V/12V 6MCPH

0

BC858CDXV6T5

BC858CDXV6T5

Sanyo Semiconductor/ON Semiconductor

TRANS 2PNP 30V 0.1A SOT563

0

Transistors - Bipolar (BJT) - Arrays

1. Overview

Bipolar Junction Transistor (BJT) Arrays are integrated packages containing multiple discrete BJTs on a single semiconductor substrate. They share common thermal and electrical characteristics while maintaining individual transistor functionality. These arrays are critical in analog and digital circuits for amplification, switching, and signal processing. Their importance in modern electronics stems from reduced PCB space requirements, improved reliability, and matched transistor parameters in high-precision applications.

2. Main Types and Functional Classification

TypeFunctional FeaturesApplication Examples
Single ArraysIndependent BJTs in one packageGeneral-purpose amplifiers
Darlington ArraysHigh current gain through cascaded pairsPower amplifiers, motor drivers
Complementary ArraysNPN+PNP transistor pairsPush-pull amplifiers, H-bridges
High-Frequency ArraysOptimized for RF/microwave performanceRadio transceivers, test equipment
Low-Noise ArraysMatched transistors for noise cancellationMedical imaging sensors

3. Structure and Composition

BJT arrays typically consist of:

  • Silicon epitaxial layers forming individual transistor cells
  • Common substrate with thermal coupling for matched performance
  • Metal interconnects for input/output terminals
  • Polymer encapsulation (e.g., SOIC, DIP, or SOT packages)
Advanced designs use dielectric isolation to minimize cross-talk between elements. Chip-level wire bonding connects transistor terminals to external leads.

4. Key Technical Specifications

ParameterDescriptionImportance
Current Gain (hFE)Amplification factor per transistorDetermines signal amplification capability
Max Operating VoltageBreakdown voltage ratingDefines safe operating limits
Transition Frequency (fT)Frequency response limitCritical for high-speed applications
Power DissipationThermal handling capacityAffects reliability and derating
Collector Saturation VoltageVoltage drop in on-stateImpacts efficiency in switching
Noise FigureSignal-to-noise degradationEssential for low-noise designs

5. Application Fields

Key industries include:

  • Telecommunications: RF power amplifiers, optical transceivers
  • Industrial Automation: Motor controllers, PLC systems
  • Consumer Electronics: Audio amplifiers, DC-DC converters
  • Automotive: Engine control units (ECUs), LED drivers
  • Medical: Diagnostic imaging detectors, patient monitoring
Case Example: ULN2003 Darlington array used in 7-channel relay drivers for industrial control systems.

6. Leading Manufacturers and Products

ManufacturerRepresentative ProductKey Specifications
TI (Texas Instruments)ULN2003A7x 500mA Darlington pairs, 50V rating
ON SemiconductorMCZ33900High-side switch array for automotive
Infineon TechnologiesBTS724GXSmart power array with diagnostics
STMicroelectronicsVND5N07-EHigh-voltage industrial switch array
Rohm SemiconductorBD68470EFVLow-saturation complementary array

7. Selection Guidelines

Key considerations:

  1. Match voltage/current ratings to application requirements
  2. Verify frequency response for high-speed operations
  3. Evaluate thermal resistance for power applications
  4. Assess transistor matching (critical for differential pairs)
  5. Consider package compatibility with PCB design
  6. Analyze cost/performance trade-offs (e.g., integrated vs discrete)

8. Industry Trends

Future development focuses on:

  • Miniaturization: 3D packaging and chip-scale arrays
  • High-frequency capabilities beyond 100GHz for 6G applications
  • Improved thermal management through advanced substrates
  • Integration with CMOS drivers in smart power arrays
  • Wide bandgap materials (SiC/GaN) for high-power arrays
  • Environmental compliance: Lead-free packaging and RoHS adherence

RFQ BOM Call Skype Email
Top