Answer to Question #81328 in Field Theory for aashar

a. The electric field retards the electron's motion. So if the electron travels far enough in the field to stop then the work done by the electric field on the electron has to equal the electron's initial kinetic energy.
K =1/2 mv^2
W=work = qEd wher d= distance, q = charge on electron and E = field strength
qEd =1/2 mv^2
d =1/2 ((mv^2)/Eq)
d = 0.712 m = 71.2 cm
b. You know the initial speed and the final speed (0 m/s).
a =qE/m
So
v = -at + v_0 = -qEt/m +v_0
v=0
t =(mv_0)/qE t = 2.85∙〖10〗^(-8) s
c. Find the work done by the electric field over the 8 mm.
W =qEd
W = 1.28∙〖10〗^(-18) J
This is the kinetic energy lost by the electron. The fraction is:
f =qEd/[1/2 mv^2 ]
f = 0.112 = 11.2%.