Answer:
(a) Electrostatic force F=4.51×10⁻¹⁷N
(b) Number of electron n=4425 electrons
Explanation:
Given data
Charges q₁=q₂= -7.08×10⁻¹⁶C
Distance r=1.00cm =0.01 m
To find
(a) Electrostatic force F
(b) Number of electron n
Solution
For (a) Electrostatic force
From Coulombs law we know that
[tex]F=k\frac{q_{1}q_{2} }{r^{2} }\\ As\\ q_{1}=q_{2}=q\\So\\F=k\frac{q^{2}}{r^{2} }\\F=(8.99*10^{9})\frac{(-7.08*10)^{-16})^{2}}{(0.01)^{2} }\\F=4.51*10^{-17}N[/tex]
For (b) number of electron n
The number of electron on the drop that giving it its imbalance is the total charge divided by charge of electron
As we now that charge of electron e= -1.6×10⁻¹⁹C
[tex]n=q/e\\n=\frac{-7.08*10^{-16} C}{-1.6*10^{-19} C}\\ n=4425electrons[/tex]
