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Q.In an unbiased p-n junction, at equilibrium, which of the following statements is true? (A) Diffusion current is zero but drift current exists. (B) Diffusion current exists but drift current is zero. (C) Diffusion and drift currents are equal and opposite. (D) Both the diffusion and drift currents exist but are unequal.

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At equilibrium in an unbiased p-n junction, the net current is zero because the diffusion current (due to carrier concentration gradients) is exactly balanced by the drift current (due to the built-in electric field). The correct option is (C).

The core concept: Why two currents must cancel

A p-n junction at equilibrium means no external voltage is applied. Yet, inside the junction, two opposing processes are always active:

  1. Diffusion: Holes from the p-side (high concentration) diffuse into the n-side, and electrons from the n-side diffuse into the p-side. This creates a diffusion current in the direction of the concentration gradient.
  2. Drift: The diffusion of carriers leaves behind ionized dopant atoms (negative on the p-side, positive on the n-side), creating a built-in electric field across the depletion region. This field pushes carriers in the opposite direction — holes back to the p-side, electrons back to the n-side — producing a drift current.

At equilibrium, these two currents must exactly cancel. If they didn’t, there would be a net flow of charge, which would change the electric field until balance is restored. This is a fundamental consequence of the condition that the Fermi level is constant throughout the junction.

Watch out

A common mistake is to think that at equilibrium, no currents exist at all. In reality, both diffusion and drift currents are present — they are just equal and opposite, so the net current is zero.

Step-by-step reasoning

  1. Identify the equilibrium condition

    An unbiased p-n junction has no external voltage source. The system is in thermodynamic equilibrium, meaning the Fermi level is flat (constant) across the entire device. This implies that the net current through the junction must be zero.

  2. Recognize the two current components

    The total current II across the junction is the sum of the diffusion current IdiffI_{\text{diff}} and the drift current IdriftI_{\text{drift}}:

I=Idiff+IdriftI = I_{\text{diff}} + I_{\text{drift}}

Both are non-zero because there is a concentration gradient (driving diffusion) and a built-in electric field (driving drift).

  1. Apply the equilibrium constraint At equilibrium, I=0I = 0. Therefore: …

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