Answer:
KE = 9.6MeV
Explanation:
Given the relationships we understand that,
[tex]q_1 = 19e, q_2 = 2e[/tex]
The Potential at point p, is given by the following formula
[tex]V_ {p} = \frac {Kq_1} {r}[/tex]
According to the graphic designed, you have,
[tex]V_ {p} = \frac {Kq_1} {(r_1 + r_2)}[/tex]
[tex]V_ {p} = \frac {(9 * 10 ^ 9) (19 * 1.6 * 10 ^ {- 15})} {(3.7 + 2) * 10 ^{- 15}}}[/tex]
[tex]V_ {p} = 4.8 * 10 ^ 6V[/tex]
The kinetic energy of the particle would be given by
[tex]KE = q_2 * V_ {p} = 2e * 4.8 * 10 ^ 6V[/tex]
[tex]KE = 9.6MeV[/tex]
