In the first configuration $(1)$ as shown in the figure,four identical charges $(q_0)$ are kept at the corners $A, B, C$ and $D$ of a square of side length $a$. In the second configuration $(2)$,the same charges are shifted to the midpoints $G, E, H$ and $F$ of the sides of the square. If $K = \frac{1}{4 \pi \varepsilon_0}$,the difference between the potential energies of configuration $(2)$ and $(1)$ is given by:

  • A
    $\frac{Kq_0^2}{a}(4\sqrt{2}-2)$
  • B
    $\frac{Kq_0^2}{a}(3-\sqrt{2})$
  • C
    $\frac{Kq_0^2}{a}(4-2\sqrt{2})$
  • D
    $\frac{Kq_0^2}{a}(3\sqrt{2}-2)$

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