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MPSA06 Transistor Working in Circuit, Pinout & Equivalents

FREE-SKY (HK) ELECTRONICS CO.,LIMITED / 11-25 17:49

The MPSA06 NPN transistor is a widely used general-purpose device valued for its reliable performance in amplification, switching, and high-voltage signal applications. This article will discuss the MPSA06 transistor’s features, pinout, specifications, applications, performance curves, test circuits, and practical usage.


Catalog

1. MPSA06 NPN Description
2. MPSA06 Transistor CAD Models
3. MPSA06 Transistor Pinout Config
4. MPSA06 Transistor Alternatives & Equivalents
5. MPSA06 Transistor Working in Circuit
6. MPSA06 Transistor Specifications
7. MPSA06 Switching Time Test Circuits
8. MPSA06 Transistor Characteristics Curves
9. MPSA06 Transistor Applications
10. MPSA06 NPN Mechanical Dimensions
11. Advantages & Limitations
12. Manufacturer
MPSA06 NPN

MPSA06 NPN Description

The MPSA06 is a versatile NPN bipolar junction transistor designed for medium-voltage, general-purpose amplification and switching tasks. With its 80 V collector-emitter rating and up to 500 mA collector current capability, it handles audio-frequency amplification, driver stages, and moderate-power loads with ease. Its typical gain of around 100 and transition frequency nearing 100 MHz make it suitable for clean signal handling in analog circuits while maintaining reliable switching performance.

Its TO-92 package offers ease of mounting, though thermal limits should be observed during higher-current operation. Paired with complementary PNP transistors like the MPSA56, it becomes a robust component for balanced amplifier designs and general electronics projects.

If you are interested in purchasing the MPSA06, feel free to contact us for pricing and availability.

MPSA06 Transistor CAD Models

MPSA06 Transistor CAD Models

MPSA06 Transistor Pinout Config

MPSA06 Transistor Pinout Config

Pin Number
Pin Name
Description
1
Emitter (E)
Current flows out through this terminal; typically connected to ground in NPN circuits.
2
Base (B)
Controls the transistor’s operation; a small current here allows a larger current to flow from collector to emitter.
3
Collector (C)
Main current input terminal; connects to the load in switching or amplification circuits.

MPSA06 Transistor Alternatives & Equivalents

Equivalent Part
Key Specs  
2N5551
High-voltage NPN (~160 V), moderate current
BC538-16 / BC538-25
TO-92 package, similar gain, ~80–100 V rating
2SC2882
High-voltage NPN transistor
2N4401
General-purpose NPN (~40–60 V)
MPSA42
High-voltage NPN (100+ V)
MJE340
Higher-power NPN, 300 V rating

MPSA06 Transistor Working in Circuit

MPSA06 Transistor Working in Circuit

In this circuit, the MPSA06 transistor functions as a key switching component that drives the LED using energy from a low 1.5V supply. The combination of inductors L1 and L2, resistor R1, and capacitor C1 forms an oscillating boost converter. When the transistor switches on and off rapidly, the inductors store and release energy, increasing the voltage to a level high enough to light the LED even though the power source is only 1.5V.

The resistor R1 provides the proper base bias for the MPSA06, ensuring the transistor switches efficiently. Capacitor C1 helps shape the oscillation frequency, while the coupled inductors boost the output voltage. As the transistor repeatedly turns on and off, the LED receives short high-voltage pulses, allowing it to illuminate from a very low input voltage.

MPSA06 Transistor Specifications

Parameter
Value  
Manufacturer
ON Semiconductor (onsemi)
Transistor Type
NPN
Collector Current (Ic) Max
500 mA
Collector-Emitter Breakdown Voltage (Vceo)
80 V
Collector-Base Breakdown Voltage (Vcbo)
80–90 V (typical)
Emitter-Base Breakdown Voltage (Vebo)
4–5 V
VCE Saturation (Max)
250 mV @ Ic = 100 mA, Ib = 10 mA
Collector Cutoff Current (Ico Max)
100 nA
DC Current Gain (hFE)
100 (min) @ Ic = 100 mA, Vce = 1 V
hFE Range (General)
100 – 300 depending on test conditions
Power Dissipation (Ptot)
625 mW
Transition Frequency (fT)
100 MHz
Noise Figure
Typically 4 dB
Operating Temperature
–55°C to +150°C
Package Type
TO-92, TO-226
Mounting Type
Through-Hole
Pin Configuration
1: Emitter, 2: Base, 3: Collector
Base Product Number
MPSA06

MPSA06 Switching Time Test Circuits

MPSA06 Switching Time Test Circuits

These diagrams show how the MPSA06 transistor is tested for its turn-on and turn-off switching times. In the turn-on test circuit, a fast input pulse is applied to the base through RB. The transistor begins conducting when the base receives the rising edge of the pulse, causing current to flow through the collector load resistor RL. This allows measurement of how quickly the transistor switches from the off state to the on state. A small test capacitance (CS) is included to represent stray capacitance in real applications.

In the turn-off test circuit, the input pulse falls, removing base drive and forcing the transistor to stop conduction. The circuit measures how long it takes for the transistor to stop allowing collector current and return to the off state. Both circuits use standardized component values to ensure that the switching speed of the MPSA06 can be accurately compared and characterized in datasheets.

MPSA06 Transistor Characteristics Curves

MPSA06 Transistor Characteristics Curves

MPSA06 Current–Gain Bandwidth Product Curve

This graph shows how the MPSA06’s transition frequency (fT) changes with collector current. As the collector current increases from a few milliamps, the transistor’s bandwidth improves, reaching a peak of around 200–250 MHz between roughly 20 mA and 70 mA. This peak indicates the range where the transistor operates with its highest high-frequency performance. Beyond this region, fT begins to drop as the device experiences internal limitations. This curve helps designers choose the optimal operating current when using the MPSA06 in high-speed switching or amplifier stages.

MPSA06 Transistor Characteristics Curves

MPSA06 Capacitance Characteristics Curve

The capacitance graph shows how the transistor’s internal junction capacitances vary with reverse voltage. As the reverse voltage increases, both the collector-base capacitance (Cibo) and the collector-emitter capacitance (Cobo) decrease. Lower capacitance at higher voltages improves switching speed and reduces signal distortion, which is important in high-frequency applications. These curves help predict how the MPSA06 will behave in fast circuits and assist in selecting proper biasing for stable performance.

MPSA06 Transistor Applications

General-purpose signal amplification

Low to medium-power switching circuits

Audio preamplifier and driver stages

LED drivers and voltage booster circuits

High-voltage, low-current switching applications

Oscillator and timing circuits

Push-pull amplifier configurations (paired with MPSA56)

Relay and small solenoid drivers

Battery-powered step-up converter circuits

High-speed switching due to its 100 MHz transition frequency

Sensor interface and conditioning circuits

DIY electronics and educational transistor projects

Use in analog processing stages requiring stable gain

Small motor and inductive load control (within current limits)

MPSA06 NPN Mechanical Dimensions

MPSA06 Transistor Dimensions

Advantages & Limitations

MPSA06 Advantages

High collector-emitter voltage rating (up to 80 V)

Suitable for medium-power switching and amplification

Good current handling capability (up to 500 mA)

High transition frequency (~100 MHz) for fast switching

Stable gain characteristics across operating currents

TO-92 package makes it easy to use in compact designs

Works well in high-voltage audio and driver stages

Reliable performance over a wide temperature range

MPSA06 Limitations

Moderate power dissipation (625 mW), requiring care with heat

Not suitable for high-current or high-power loads

Gain variation depending on current and temperature

Junction capacitances can affect high-frequency precision circuits

Switching speed influenced by external capacitances and load

Needs proper biasing to avoid thermal runaway in amplifier use

Manufacturer

ON Semiconductor (onsemi) is a leading global manufacturer known for producing high-performance, energy-efficient semiconductor solutions used across automotive, industrial, and consumer electronics. With strong capabilities in high-volume production, advanced fabrication technologies, and strict quality control, onsemi supports demanding applications such as electric vehicles, power management, automation, and high-speed communication systems. Their broad portfolio and engineering expertise make them a trusted provider of robust and innovative semiconductor products worldwide.

Datasheet PDF

MPSA06 Datasheet:

MPSA06, MMBTA06, PZTA06.pdf

TO92 Packing Updates 01/Jul/2015.pdf

Mult Devices 24/Oct/2017.pdf


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