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DTA143ZU3T106

DTA143ZU3T106

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Rohm Semiconductor

PNP, SOT-323, R1≠R2 LEAK ABSORPTION TYPE DIGITAL TRANSISTOR (BIAS RESISTOR BUILT-IN TRANSISTOR)

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DTA143ZU3T106

DTA143ZU3T106

Active
Rohm Semiconductor

PNP, SOT-323, R1≠R2 LEAK ABSORPTION TYPE DIGITAL TRANSISTOR (BIAS RESISTOR BUILT-IN TRANSISTOR)

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Description

General part information

DTA143 Series

DTA143TU3HZG is an digital transistor (Resistor built-in type transistor). Built-in bias resistors enable the configuration of an inverter circuit without connecting external input resistors. This is a high-reliability product of automotive grade qualified to AEC-Q101.

Technical Specifications

Parameters and characteristics for this part

SpecificationDTA143ZU3T106
Current - Collector (Ic) (Max)0.1 mA
DC Current Gain (hFE) (Min)80
Frequency - Transition250 MHz
Mounting TypeSurface Mount
Package / CaseSC-70, SOT-323
Package NameUMT3
Power - Max200 mW
Resistor - Base (R1) Resistance4.7 kOhm
Resistor - Emitter Base (R2)47 kOhm
Transistor TypePre-Biased, PNP
Vce Saturation (Max)300 mV

Pricing

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CAD

3D models and CAD resources for this part

Documents

Technical documentation and resources

Datasheet
Datasheet
Overview of ROHM's Simulation Models(for ICs and Discrete Semiconductors)
Anti-Whisker formation - Transistors
How to Use LTspice® Models
Small-Signal Discrete Devices Digital Transistors(Long-Selling Products) - DTA1xxxU3, DTC1xxxU3
What is a Thermal Model? (Transistor)
Part Explanation
Package Dimensions
Notes for Temperature Measurement Using Forward Voltage of PN Junction
Temperature derating method for Safe Operating Area (SOA)
Types and Features of Transistors
Taping Information
Notes for Temperature Measurement Using Thermocouples
What Is Thermal Design
List of Transistor Package Thermal Resistance
Compliance of the RoHS directive
How to Use LTspice® Models: Tips for Improving Convergence
About Flammability of Materials
Method for Calculating Junction Temperature from Transient Thermal Resistance Data
Basics of Thermal Resistance and Heat Dissipation
Two-Resistor Model for Thermal Simulation
Reliability Test Result
Precautions When Measuring the Rear of the Package with a Thermocouple
Measurement Method and Usage of Thermal Resistance RthJC
Notes for Calculating Power Consumption:Static Operation
How to Create Symbols for PSpice Models
Method for Monitoring Switching Waveform
Importance of Probe Calibration When Measuring Power: Deskew
Moisture Sensitivity Level - Transistors
Explanation for Marking
Certificate of not containing SVHC under REACH Regulation
Calculation of Power Dissipation in Switching Circuit
Impedance Characteristics of Bypass Capacitor
PCB Layout Thermal Design Guide
About Export Regulations
Condition of Soldering / Land Pattern Reference