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Q.The process named 'minority carrier injection' in a p-n junction diode occurs during : (A) forward biasing (B) reverse biasing (C) no biasing at low temperature (D) no biasing at high temperature

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Minority carrier injection happens when a p-n junction is forward biased — the applied voltage reduces the barrier, allowing majority carriers from each side to cross over and become minority carriers on the other side. The correct answer is (A) forward biasing.

The core concept: what "minority carrier injection" really means

In a p-n junction, the p-side has holes as majority carriers and electrons as minority carriers; the n-side has electrons as majority and holes as minority. At equilibrium (no bias), the built-in potential barrier prevents net flow — only a tiny leakage current of minority carriers drifts across.

"Minority carrier injection" is the process where majority carriers from one side are forced across the junction into the opposite side, where they become minority carriers. This is not a spontaneous event — it requires an external voltage to overcome the barrier.

Why forward bias is the only condition that does this

1. Forward bias (p-side positive, n-side negative):

The applied voltage opposes the built-in potential, reducing the barrier height. Majority carriers (holes from p-side, electrons from n-side) now have enough energy to diffuse across the junction. Once across, each hole finds itself surrounded by electrons on the n-side — it is now a minority carrier there. Similarly, electrons that cross become minority carriers on the p-side. This flood of excess minority carriers is precisely what "minority carrier injection" means. The injected carriers then recombine gradually, producing the forward current.

2. Reverse bias (p-side negative, n-side positive):

The applied voltage adds to the built-in potential, making the barrier even larger. Majority carriers cannot cross. The only current is a tiny reverse saturation current due to the existing minority carriers being swept across by the electric field — no new minority carriers are injected. In fact, any minority carriers that do appear are quickly removed, not injected.

3. No biasing (at any temperature):

Without an external voltage, the junction is in equilibrium. The net current is zero. There is no net injection — the small number of minority carriers that diffuse across are exactly balanced by the drift current. Temperature affects the intrinsic carrier concentration, but it does not cause injection; it only changes the equilibrium concentrations.

Watch out

A common mistake is to think that reverse bias also injects minority carriers because current still flows. That current comes from already present minority carriers being pulled across, not from majority carriers being forced over. Injection specifically means majority carriers become minority carriers on the other side — that only happens in forward bias.

Step-by-step reasoning …

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