Answer:
B. 1240 V
Step-by-step explanation:
Given
Initial velocity of the charge, u = 0 m/s
Final velocity of the charge, v = 600 m/s
Magnitude of the charge, q =

mass of the charge, m =

Solution
Gain in mechanical energy = Loss in electric potential energy

Rounding off the answer to closest tens, we get
V = 1240 V