Skip to content
Question

Q.Briefly explain the two important processes that occur during the formation of a p-n junction.

CBSECBSE Class XII Board 2026Subjective· 3mImportance★★★★★
🔒 Locked · start free trial →

You're viewing a preview — the full solution, concept, methods & PYQ mapping are locked.

Start your 14-day free trial to unlock the full solution →

When p-type and n-type semiconductors are brought together, diffusion drives majority carriers across the junction while drift (due to the built-in electric field) opposes it, establishing equilibrium and creating a depletion region. The result is a p-n junction with a built-in potential barrier.

The Physics Behind P-N Junction Formation

When you place p-type silicon (rich in holes) directly against n-type silicon (rich in electrons), nature doesn't let them sit quietly side by side. A concentration gradient exists—holes are abundant on one side, electrons on the other—and charged particles respond to gradients. Two competing processes unfold simultaneously, and their balance defines everything about how the junction behaves.

1. Diffusion – The Spontaneous Mixing

The moment the junction forms, majority carriers see a steep concentration gradient and do what any particle does: they diffuse from high to low concentration.

Electrons in the n-region, where they're plentiful, diffuse across into the p-region where electrons are scarce. Similarly, holes from the p-region diffuse into the n-region. This is pure statistical mechanics—random thermal motion biased by the gradient.

But here's the crucial consequence: as electrons leave the n-side, they leave behind positively charged donor ions — the ionized pentavalent dopant atoms that donated those electrons. As holes leave the p-side, they leave behind negatively charged acceptor ions — the ionized trivalent dopant atoms. These immobile ions cannot follow the carriers—they're locked in the crystal lattice.

A depletion region (or space-charge region) forms near the junction, depleted of mobile carriers but filled with fixed ionic charges: positive on the n-side, negative on the p-side. This charge separation creates an electric field pointing from n to p.

Note

Diffusion is driven purely by the concentration gradient and would continue indefinitely if unopposed. It's a statistical process—carriers move randomly, but more cross from the crowded side to the empty side than vice versa.

2. Drift – The Electric Field Pushback

The electric field created by the exposed ions doesn't sit idle. It exerts forces on any remaining mobile carriers:

  • Minority electrons in the p-region (there are always a few from thermal generation) experience a force toward the n-region—the field accelerates them across the junction.
  • Minority holes in the n-region are pushed toward the p-region.

This field-driven motion is called drift. It opposes diffusion: while diffusion pushes majority carriers across, drift sweeps minority carriers back.

As more carriers diffuse, the depletion region widens, the electric field strengthens, and drift current increases. Eventually, an equilibrium is reached where the diffusion current (majority carriers crossing due to concentration) exactly balances the drift current (minority carriers swept back by the field). …

Unlock everything free for 14 days

  • Full step-by-step solutions
  • Concept-first explanations
  • Methods, shortcuts & mistakes
  • PYQ mapping + timed mock tests

Full access for 14 days. No credit card required.