Q.When a forward bias is applied to a p-n junction, it
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Start your 14-day free trial to unlock the full solution →Forward bias reduces the potential barrier at a p-n junction, allowing majority carriers to flow easily across the junction. The correct option is (c).
Understanding P-N Junction Biasing
A p-n junction is formed when p-type and n-type semiconductors are joined. At the junction, electrons from the n-side diffuse into the p-side, and holes from the p-side diffuse into the n-side. This diffusion leaves behind immobile charged ions, creating a depletion region with an internal electric field. This field opposes further diffusion and gives rise to a potential barrier (typically about 0.7 V for silicon).
Now, biasing means applying an external voltage across the junction. The effect depends on the polarity:
- Forward bias: p-side connected to positive terminal, n-side to negative terminal.
- Reverse bias: p-side connected to negative terminal, n-side to positive terminal.
The key question is: what happens to the potential barrier in each case?
Step-by-Step Reasoning
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What the potential barrier represents
The potential barrier is the voltage difference across the depletion region that prevents majority carriers from crossing freely. For a p-n junction, the built-in potential is determined by the doping concentrations and temperature. In equilibrium (no external bias), this barrier is fixed.
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Effect of forward bias on the barrier
When forward bias is applied, the external voltage opposes the internal electric field. The positive terminal repels holes in the p-side toward the junction, and the negative terminal repels electrons in the n-side toward the junction. This reduces the width of the depletion region and lowers the effective potential barrier to .
The barrier decreases as forward voltage increases.
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Consequence of lowering the barrier …
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