Answer:

Correct Answer: D

Solution:

When a parallel plate air capacitor connected to a cell of emf V, then charge stored will be $ q=CV $

$ \Rightarrow \ V=\frac{q}{C} $ Also energy stored is $ U=\frac{1}{2}CV^{2}=\frac{q^{2}}{2C} $

As the battery is disconnected from the capacitor the charge will not be destroyed i.e. $ q’=q $

with the introduction of dielectric in the gap of capacitor the new capacitance will be $ C’=CK $

$ \Rightarrow $ $ V’=\frac{q}{C’}=\frac{q}{CK} $

The new energy stored will be $ U’=\frac{q^{2}}{2CK} $ $ \Delta U=U’-U=\frac{q^{2}}{2C}( \frac{1}{K}-1 ) $

$ =\frac{1}{2}CV^{2}( \frac{1}{K}-1 ) $

Hence, option (d) is Incorrect.