Answer:
b)[tex]{{Q}'}=2.1Q[/tex]
Explanation:
Given that
The power source still connects it means that the voltage difference will be same in above both condition
As we know that
[tex]Q=C\Delta V[/tex]
Or we can say that
[tex]Q=\dfrac{\varepsilon _oA}{d}\Delta V[/tex] ----1
Where d is the distance between two plates ,A is the area.
When K=4.2 and distance become double
[tex]{Q}'=\dfrac{K\varepsilon _oA}{{d}'}\Delta V[/tex]
[tex]{Q}'=\dfrac{4.2\varepsilon _oA}{2d}\Delta V[/tex] ----2
Now from equation 1 and 2
[tex]\dfrac{{Q}'}{Q}=\dfrac{4.2}{2}[/tex]
So
[tex]{{Q}'}=2.1Q[/tex]
