Q.Describe how a semi conductor diode is used as a half wave rectifier.
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P-N Junction Rectification: Turning AC into DC
Imagine you have a water pipe with a one-way valve. Water can flow freely in one direction, but if you try to push it the other way, the valve slams shut and nothing moves. That's exactly what a p-n junction does — but with electric current instead of water.
The Intuition: Why Does It Let Current Flow Only One Way?
A p-n junction is made by joining two pieces of semiconductor: one p-type (with extra "holes" — think of them as positive charge carriers) and one n-type (with extra electrons). At the junction, something interesting happens.
Electrons from the n-side diffuse into the p-side, and holes from the p-side diffuse into the n-side. They meet and recombine, leaving behind a region with no free charge carriers — the depletion region. This region acts like a tiny battery, creating an internal electric field that points from n to p.
Now here's the key: this internal field opposes the flow of majority carriers. It's like a spring that's been compressed — it wants to push things back.
The depletion region is the reason a p-n junction conducts in only one direction. It's the "gatekeeper."
Forward Bias: Opening the Gate
Connect the p-side to the positive terminal of a battery and the n-side to the negative terminal. This is forward bias.
The external battery pushes holes from p toward n, and electrons from n toward p. They both march toward the depletion region. If the battery voltage is large enough (about 0.7 V for silicon), it overcomes the internal field. The depletion region shrinks, and current flows easily.
Think of forward bias as pushing the spring in the direction it wants to go — it compresses easily, and current flows.
Reverse Bias: Locking the Gate
Now swap the battery: p-side to negative, n-side to positive. This is reverse bias.
The battery pulls holes away from the junction on the p-side, and electrons away on the n-side. The depletion region widens — the spring stretches. No current flows (except a tiny leakage current from minority carriers, which we ignore for now).
If you apply too much reverse voltage, the junction breaks down and current surges. This is avalanche breakdown — it can destroy the diode unless it's designed for it (like a Zener diode).
The Precise Statement
Rectification: A p-n junction diode allows current to flow freely under forward bias and blocks current under reverse bias. This property converts alternating current (AC) into pulsating direct current (DC).
Mathematically, the current-voltage relationship is given by the Shockley diode equation:
Where:
- = diode current
- = reverse saturation current (tiny, typically to A)
- = applied voltage (positive for forward bias, negative for reverse)
- = ideality factor (usually 1 for ideal, 1–2 for real diodes)
- = thermal voltage mV at room temperature (300 K)
For forward bias (), the exponential term dominates, so — current grows rapidly.
For reverse bias (), , so — a tiny constant leakage current.
How Rectification Works in Practice …
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