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Q.Why is the electrostatic potential inside a charged conducting shell constant throughout the volume of the conductor?

CBSECBSE Class XII Board 2019Subjective· 1mImportance★★★★★
✓ Free question

Inside a conductor in electrostatic equilibrium, the electric field is zero everywhere, so no work is done moving a test charge between any two points — hence the potential is constant throughout.

The key to understanding this lies in what happens when charges reach equilibrium on a conductor. A conductor has free electrons that can move in response to any electric field. In electrostatic equilibrium (when all charges have stopped moving), these free charges arrange themselves in such a way that they cancel any internal electric field completely.

Here's why the potential must be constant:

  1. The electric field inside is zero.

    If there were any electric field E⃗\vec{E} inside the conductor, the free electrons would experience a force F⃗=qE⃗\vec{F} = q\vec{E} and continue to move. Since we're in electrostatic equilibrium, all motion has ceased, which means E⃗=0\vec{E} = 0 everywhere inside the conductor.

  2. Potential is related to the electric field.

    The relationship between electric field and potential is

E⃗=−∇V=−dVdr r^\vec{E} = -\nabla V = -\frac{dV}{dr}\,\hat{r}

If E⃗=0\vec{E} = 0, then dVdr=0\frac{dV}{dr} = 0, meaning the potential does not change with position.

  1. No work is done moving charges inside.

    The potential difference between two points is defined as the work done per unit charge in moving a test charge between them:

VB−VA=−∫ABE⃗⋅dl⃗V_B - V_A = -\int_A^B \vec{E} \cdot d\vec{l}

Since E⃗=0\vec{E} = 0 inside the conductor, this integral vanishes for any path between any two points AA and BB inside. Therefore VB=VAV_B = V_A — the potential is the same everywhere.

Note

This applies to the entire volume of the conductor, not just the hollow region. Whether you're on the inner surface, the outer surface, or anywhere in the bulk metal, the potential is identical.

  1. All excess charge resides on the surface.

    By Gauss's law, if E⃗=0\vec{E} = 0 inside, then any Gaussian surface drawn entirely within the conductor encloses zero net charge. All excess charge must therefore sit on the conductor's surfaces (inner and outer). This charge distribution is precisely what creates the zero field inside.

Watch out

Do not confuse "constant potential inside" with "zero potential." The potential inside is constant at some value V0V_0, which depends on the total charge and geometry. It's the gradient of potential (the field) that is zero, not the potential itself.

The physical picture: imagine trying to push a test charge through the conductor. The free electrons have already arranged themselves to create an internal environment where no net force acts on any charge. You glide through effortlessly, doing no work, so the potential energy (and hence potential) never changes.

✓Final answer

The electrostatic potential is constant throughout a conductor in equilibrium because the electric field inside is zero, so no work is done moving a test charge between any two points.

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