D.3.2—Charge in magnetic fields

Syllabus
First assessment 2025
Objective
Level
SL

Model Charge Motion in a Magnetic Field

Identify the magnetic force

A moving charge in a magnetic field experiences a force perpendicular to both its velocity and the field. A stationary charge, or a charge moving parallel to the field, has zero magnetic force.

Explain and measure the circular path

For velocity perpendicular to a uniform magnetic field, the force is always perpendicular to the velocity and supplies the centripetal force. The direction changes continuously while speed and kinetic energy remain constant.

|q|vB=\frac{mv^2}{r}\quad\Rightarrow\quad r=\frac{mv}{|q|B},\qquad \frac{|q|}{m}=\frac{v}{Br}

Worked example — charge-to-mass ratio

A particle beam with v=2.5×107ms1v=2.5\times10^7\,\mathrm{m\,s^{-1}} follows a circle of radius r=7.8cm=0.078mr=7.8\,\mathrm{cm}=0.078\,\mathrm{m} in B=1.8mT=1.8×103TB=1.8\,\mathrm{mT}=1.8\times10^{-3}\,\mathrm{T}. Then q/m=v/(Br)=1.8×1011Ckg1|q|/m=v/(Br)=1.8\times10^{11}\,\mathrm{C\,kg^{-1}}. The path direction is needed separately to determine the sign of the charge.

Use the full motion picture

A velocity component parallel to the field is unchanged, while the perpendicular component produces circular motion. Together they can form a helical path. Magnetic force does no work because it is perpendicular to instantaneous velocity, so kinetic energy stays constant.

Common trap

Do not say a magnetic field speeds up a charge or changes its kinetic energy. It changes direction, not speed, when no electric field is present.

D.3.2 Exam Analysis

Assessment in practice

1–2 marks
How it is assessed

Questions infer charge sign or mass from curved paths, or calculate the radius/charge-to-mass ratio.

Command terms

What is

What earns marks

Recognize perpendicular magnetic force, use r=mv/(|q|B) for circular motion, and state that speed and kinetic energy remain constant.

Watch for

Using the radius trend without checking q and v, or claiming magnetic force changes speed.

Representative question

Question 1

[Maximum number: 1]

The path of three particles with identical magnitude of charge but different mass is shown as they enter a region of uniform magnetic field. The particles have the same initial velocity. The magnetic field is directed into the plane of the paper.

What is the mass of particle X compared to the other particles and what is the sign of the charge on particle X ?

Mass in comparison

Sign of charge

larger

positive

larger

negative

smaller

positive

smaller

negative

Retrieve the D.3 Motion in Electromagnetic Fields Model

D.3 is secure when you can keep electric and magnetic force rules separate and then combine them deliberately.

  • Electric fields give F=qE and constant acceleration in a uniform field
  • Magnetic fields bend moving charges without changing kinetic energy
  • Crossed fields can cancel at v=E/B
  • Moving-charge magnetic force is F=|q|vB sinθ
  • Conductor force is F=BIL sinθ
  • Parallel currents attract in the same direction and repel in opposite directions