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Q.Describe how a semi conductor diode is used as a half wave rectifier.

Telangana TsbieTelangana Board of Intermediate Education 2022Subjective· 4mImportance★★★★★
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Concept understanding — P-N Junction Rectification

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.

Note

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.

Tip

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).

Watch out

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:

I=IS(eVnVT−1)I = I_S \left( e^{\frac{V}{nV_T}} - 1 \right)

Where:

  • II = diode current
  • ISI_S = reverse saturation current (tiny, typically 10−1210^{-12} to 10−610^{-6} A)
  • VV = applied voltage (positive for forward bias, negative for reverse)
  • nn = ideality factor (usually 1 for ideal, 1–2 for real diodes)
  • VTV_T = thermal voltage ≈25.85\approx 25.85 mV at room temperature (300 K)

For forward bias (V>0V > 0), the exponential term dominates, so I≈ISeV/(nVT)I \approx I_S e^{V/(nV_T)} — current grows rapidly.

For reverse bias (V<0V < 0), eV/(nVT)≈0e^{V/(nV_T)} \approx 0, so I≈−ISI \approx -I_S — a tiny constant leakage current.

How Rectification Works in Practice …

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