Answer:
F_B = 6.4*10^-13 N
Explanation:
The magnetic force on the electron, generated by the motion of the electron and the magnetic field is given by:
[tex]F_B=qv\ X\ B[/tex]
q: electron charge = 1.6*10^{-19}C
v: speed of the electron = 2.0*10^6 m/s
B: magnitude of the magnetic field = 2T
However, the direction of B and v are perpendicular between them. So, the angle between vectors is 90°. The magnitude of the magnetic force is:
[tex]|F_B|=qvBsin90\°=qvB[/tex]
You replace the values of q, v and B in the last equation:
[tex]|F_B|=(1.6*10^{-19}C)(2.0*10^6m/s)(2T)\\\\|F_B|=6.4*10^{-13}\ N[/tex]
hence, the magnetic force on the electron is 6.4*10^-23 N
