🔊 Transistor Amplifier

Written by MySimulator Team · Reviewed by MySimulator Editorial Review

Last updated: 5 July 2026

Common-emitter BJT · small signal → large signal

V_out (DC, Q-point)
I_C (quiescent)
g_m
Voltage gain A_v
Output
StatusClean

🔊 Transistor Amplifier — Small Signals Made Large

About this simulation

A bipolar junction transistor (BJT) uses a small base current to control a much larger collector current. In a common-emitter amplifier, a correct DC bias sets the operating point and a small AC input voltage rides on top of it. The result is a large, inverted copy of the input at the output — until you push it too hard and the peaks clip.

How it works

Key equations

Ic = beta · Ib   gm = Ic / Vt   Av = −gm · Rc   Vout = Vcc − Ic · Rc

Controls

Did you know?

The first working transistor amplifier was demonstrated at Bell Labs in December 1947. The same common-emitter principle shown here scales from a single tiny signal stage to the power amplifiers driving loudspeakers and radio transmitters around the world.

Transistor Amplifier — FAQ

Ten common questions about how a common-emitter BJT amplifier turns small signals into large ones.

What does a transistor amplifier actually do?

A bipolar junction transistor (BJT) lets a small base current control a much larger collector current. In a common-emitter amplifier this current-controlling action turns a tiny input voltage into a large output voltage swing across the collector resistor.

What is the operating point or Q-point?

The Q-point is the steady DC voltage and current the transistor sits at with no signal applied. It is set by the DC bias. The AC input then wiggles the transistor around this point. A good Q-point sits roughly midway on the load line so the signal can swing up and down equally.

What is voltage gain?

Voltage gain A_v is how many times larger the output voltage is than the input. For a common-emitter stage Av = −gm · Rc, where gm is the transconductance and Rc is the collector resistor. The minus sign means the output is inverted relative to the input.

Why is the output inverted?

When the input voltage rises, base current rises, collector current rises, and the voltage dropped across Rc rises. Because the output is taken between Rc and the transistor, the collector voltage falls. So a rising input produces a falling output: a 180-degree phase inversion.

What causes clipping distortion?

Clipping happens when the signal tries to swing beyond the supply rails. If the transistor saturates, the output cannot drop below about 0.2 V; if it cuts off, the output cannot rise above the supply. The peaks of the waveform get flattened, adding harmonic distortion.

What is transconductance (gm)?

Transconductance gm = Ic / Vt relates a small change in base-emitter voltage to the resulting change in collector current, where Vt is the thermal voltage (~26 mV at room temperature). Larger collector current gives larger gm and therefore larger gain.

What is the role of beta?

Beta is the current gain of the transistor: Ic = beta · Ib. A typical small-signal BJT has a beta of around 100, meaning the collector current is 100 times the base current. Beta lets a tiny base current control a large collector current.

How do I get the largest undistorted signal?

Centre the Q-point so the quiescent collector voltage is about half the supply, then increase the input amplitude until the peaks just begin to flatten. Backing off slightly from that point gives the maximum clean swing.

Why does a larger collector resistor increase gain?

Gain is gm · Rc, so a larger Rc produces a bigger output voltage swing for the same change in collector current. The trade-off is that a large Rc lowers the quiescent collector voltage and reduces the available output swing before clipping.

Is this a realistic model of a real amplifier?

It uses the standard small-signal and large-signal BJT equations: Ic = beta · Ib, gm = Ic / Vt, and Av = −gm · Rc, with saturation and cutoff limits. Real designs add bias networks, emitter degeneration and coupling capacitors, but the core amplifying behaviour shown here is genuine.