Answer:
[tex]N_{electrons}=Q_{transfered}/q_{electron}=5.94*10^{18}electrons[/tex]
Explanation:
The total charge is distributed over the two objects:
[tex]Q_{total}/2=(3.8*10^{-6}C+1.9C)/2=0.9500019C\\[/tex]
The plate and the rod must have [tex]Q_{total}/2\\[/tex]. So the charge transferred from the plate to the rod is:
[tex]Q_{transfered}=3.8*10^{-6}C-Q_{total}/2=3.8*10^{-6}C-0.9500019C=-0.9499981C\\[/tex]
Number of electrons:
[tex]N_{electrons}=Q_{transfered}/q_{electron}=-0.9499981C/(-1.6*10^{-19}C)=5.94*10^{18}electrons[/tex]
