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Q.Two statements are given – one labelled Assertion (A) and the other Reason (R). Select the correct answer from the codes below: (A) Both (A) and (R) are true and (R) is the correct explanation of (A). (B) Both (A) and (R) are true, but (R) is not the correct explanation of (A). (C) (A) is true, but (R) is false. (D) (A) is false and (R) is also false. Assertion (A) : On forward biasing a p-n junction diode, the height of the barrier potential increases. Reason (R) : In forward biasing of a p-n junction diode, the direction of the applied voltage is in the same direction as the built-in potential.

CBSECBSE Class XII Board 2026MCQ· 1mImportance★★★★★
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The assertion is false because forward biasing decreases the barrier height, not increases it. The reason is also false because the applied voltage opposes the built-in potential, not aligns with it. Hence both statements are false.

The Concept: Barrier Potential in a p-n Junction

A p-n junction has a depletion region at the interface, where mobile charge carriers have recombined, leaving behind fixed positive ions on the n-side and fixed negative ions on the p-side. This creates an internal electric field pointing from n to p, which gives rise to a built-in potential (or barrier potential) VbV_b. This barrier prevents further diffusion of majority carriers across the junction.

Now, what happens when we apply an external voltage?

Forward bias means connecting the positive terminal of the battery to the p-side and the negative terminal to the n-side. The applied voltage VfV_f creates an electric field that opposes the built-in field. The net field across the depletion region decreases, the depletion width shrinks, and the barrier height reduces to Vb−VfV_b - V_f.

Reverse bias does the opposite: the applied field adds to the built-in field, increasing the barrier height to Vb+VrV_b + V_r.

So the key idea is simple: forward bias lowers the barrier; reverse bias raises it.


Step-by-Step Analysis

1. Examine the Assertion (A):

"On forward biasing a p-n junction diode, the height of the barrier potential increases."

This directly contradicts the physics we just discussed. In forward bias, the applied voltage reduces the net potential across the depletion region. The barrier height decreases, not increases. Therefore, Assertion (A) is false.

Watch out

A common mistake is to think that "forward" means the voltage is pushing carriers forward over the barrier, so the barrier must be higher to stop them. Actually, forward bias helps carriers cross by lowering the barrier — that's why current flows easily.

2. Examine the Reason (R): …

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