In the figure, an electron with an initial kinetic energy of 4.20 keV enters reg
ID: 1422800 • Letter: I
Question
In the figure, an electron with an initial kinetic energy of 4.20 keV enters region 1 at time t = 0. That region contains a uniform magnetic field directed into the page, with magnitude 0.0120 T. The electron goes through a half-circle and then exits region 1, headed toward region 2 across a gap of 25.0 cm. There is an electric potential difference ?V = 2000 V across the gap, with a polarity such that the electron's speed increases uniformly as it traverses the gap. Region 2 contains a uniform magnetic field directed out of the page, with magnitude 0.0238 T. The electron goes through a half-circle and then leaves region 2. At what time t does it leave?
Region 1 Region 2Explanation / Answer
In region 1,
Fnet = qvB = mv^2/r
qB = mv/r
v= qBr/m
T= 2r/v= 2r/(qBr/m) = 2m/qB
t1=T/2 = m/qB = (3.14*9.1*10^-31)/(1.6*10^-19*0.012) = 1.5*10^-9 s
In region 2,
t2=T/2 = m/qB = (3.14*9.1*10^-31)/(1.6*10^-19*0.0238) = 7.5*10^-10 s
In the gap,
KE=1/2mv^2
4.20*10^3*1.6*10^-19 = ½*(9.1*10^-31)*v^2 => v= 3.84*10^7 m/s
Thus velocity of the electron before entering the gap = v= vi = 3.84*10^7 m/s
Acceleration in the region, a= F/m = qE/m = (V/d)*q/m = (2000*1.60*10^-19)/(0.25*9.11*10^-31) = 1.4*10^15m/s^2
so the time to cross the gap comes from x = vi*t + 1/2*a*t^2
0.25 = (3.84*10^7)*t +1/2*(1.4*10^15)*t^2 => t= 5.9*10^-9s
T = t1+t2+t3 = (1.5*10^-9)+( 7.5*10^-10)+( 5.9*10^-9) = 8.15*10^-9 s