Question

What is the magnetic force acting on an electron if its speed is 3.0 × 106 meters/second and the direction is perpendicular to a magnetic field of 0.020 teslas? The value of q = -1.6 × 10-19 coulombs.
A. F = 0 newtons
B. F = -6.0 × 10-15 newtons
C. F = -9.6 × 10-15 newtons
D. F = -3.0 × 10-16 newtons
E. F = -3.2 × 10-21 newtons

Answer 1

Answer:

$9.6\cdot 10^{-15} N$

Explanation:

The magnetic force acting on a charged particle moving perpendicularly to the field is given by:

$F=qvB$

where

q is the charge

v is the speed of the particle

B is the magnetic field strength

In this problem, we have:

$q=-1.6\cdot 10^{-19} C$ is the charge

$v=3.0\cdot 10^6 m/s$ is the speed

$B=0.020 T$

so, the magnetic force is

$F=(-1.6\cdot 10^{-19} C)(3.0\cdot 10^6 m/s)(0.020 T)=9.6\cdot 10^{-15} N$