$A$ capacitor is connected to a battery. What happens to the force of attraction between the plates when the separation between them is halved?

The capacity of a parallel plate capacitor depends on:

Two identical metal plates are given charges $q_1$ and $q_2$ $(q_2 < q_1)$ respectively. If they are now brought close together to form a parallel plate capacitor with capacitance $C$,the potential difference $V$ between the plates is

In the diagram,the area of each plate is $A = 2 \,m^2$ and $d = 2 \times 10^{-3} \,m$. An electric charge of $q = 8.85 \times 10^{-8} \,C$ is given to the plate '$Q$'. Plates '$P$' and '$R$' are connected to the ground. Then the potential of plate '$Q$' is:

When a test charge placed in the middle of a parallel plate capacitor experiences a force $F$,what will be the force experienced by the same test charge if one plate is removed?

The potential difference between two plates of a parallel plate capacitor is $2V$. As shown in the figure,electrons are placed at point $P$ and $Q$. So,