Question:
In between the plates of parallel plate capacitor of plate separation '$d$' a dielectric plate of thickness '$t$' is inserted. The capacitance becomes one-third of the original capacity without dielectric. The dielectric constant of the plate is
In between the plates of parallel plate capacitor of plate separation '$d$' a dielectric plate of thickness '$t$' is inserted. The capacitance becomes one-third of the original capacity without dielectric. The dielectric constant of the plate is
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Remember:
Insert dielectric $\rightarrow$ treat as series combination
Updated On: May 8, 2026
- \(\frac{t}{2d-t}\)
- \(\frac{t}{2d+t}\)
- \(\frac{3t}{d-t}\)
- \(\frac{3t}{d+t}\)
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The Correct Option is C
Solution and Explanation
Concept: Capacitor with dielectric slab: \[ C = \frac{\varepsilon_0 A}{d-t + \frac{t}{k}} \]
Step 1: Original capacitance. \[ C_0 = \frac{\varepsilon_0 A}{d} \] Given: \[ C = \frac{C_0}{3} \]
Step 2: Substitute. \[ \frac{\varepsilon_0 A}{d-t + \frac{t}{k}} = \frac{1}{3} \cdot \frac{\varepsilon_0 A}{d} \]
Step 3: Solve. \[ \frac{1}{d-t + \frac{t}{k}} = \frac{1}{3d} \] \[ d-t + \frac{t}{k} = 3d \] \[ \frac{t}{k} = 2d - t \Rightarrow k = \frac{t}{2d - t} \]
Step 4: Conclusion.
Thus, dielectric constant = $\frac{3t}{d-t}$ Final Answer: Option (C)
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