Question

Two protons, each of charge `+1.60 * 10-19 C`, are `2.00 * 10-5 m` apart. What is the change in the electric potential energy of this pair of charges if they are brought `1.00 * 10-5 m` closer together?

Answer is A, why?

A) 1.15 10-23J
B) 3.20 10-19J
C) 3.20 10-16J
D) 1.60 10-19J
E) 1.60 * 10-14J

Answer 1

Initial electrostatic potential energy was `P.E=(9*10^9*(1.6*10^-19)^2)/(2*10^-5)J` (using the formula, `P.E=1/(4 pi epsilon) (q_1 q_2)/x`)

When they were brought closer by `1*10^-5m`,new distance between them became, `(2-1)*10^-5=1*10^-5m`

So,new potential energy is `P.E'=(9*10^9*(1.6*10^-19)^2)/(1*10^-5)J`

So,change in potential energy =`P.E'-P.E=(9*10^9*(1.6*10^-19)^2)/(10^-5)*(1-1/2)=11.52*10^-24=1.15*10^-23J`

Note here we get increase in potential energy during this process as bringing two positively charge results in repulsion,which causes the system to gain potential energy.