IB Physics SL Topic 4 — Electric & Magnetic Fields Paper 1 & 2 Only electrons move ~8 min read

Static Charge

Rub a balloon on your hair and it clings to the wall; drag your feet on a carpet and the doorknob bites back. That’s static charge — electrons quietly hopping from one surface to another and getting stranded. Here’s how objects pick up charge, how we drain it away safely, and when a harmless crackle turns into a real hazard.

📘 What you need to know

Three Ways to Charge Something Up

All static charging comes down to moving electrons around. There are three routes, and the exam loves to test whether you can tell them apart:

Through all three, keep one rule fixed in your head: protons stay put; only electrons move.

Charging by Friction

When two insulators are rubbed together, friction drags electrons off one surface and onto the other. The object that gains electrons becomes negative; the one that loses them is left positive. It’s not limited to solids either — even a liquid flowing through a pipe can charge up this way.

rubbing transfers electrons: rod → duster + + + rod: + (lost e⁻) − − − duster: − (gained e⁻) electronsboth were neutral before rubbing — charge is just moved, not created
Rubbing hands electrons from one surface to the other. The one that loses electrons is left positive, the one that gains them negative — and the two charges are always equal and opposite.
rub two insulators
electrons transfer
one − (gained e⁻)
and
one + (lost e⁻)

Charging by Induction

Electrostatic induction is the separation of charge in a conductor caused by a nearby charged object — with no contact at all. (Don’t confuse it with electromagnetic induction, which is a completely different topic.) The charged object pushes or pulls the conductor’s free electrons, so one side ends up with an excess of one charge and the other side the opposite. Team induction up with earthing and you can leave a conductor permanently charged.

−− + 1. rod near charges separate −− + 2. earth it electrons flow away −− + + 3. remove earth sphere left positive + + + + 4. remove rod charge spreads out negative rod ⇒ positive sphere (opposite sign)
Charging a sphere by induction: a negative rod separates the charge, earthing lets the repelled electrons escape, and removing the earth then the rod leaves the sphere positive — the opposite sign to the rod, without ever touching it.

Charging by Contact

If a charged object actually touches a conductor, charge simply flows across until the two settle down. Because charge moves directly from one to the other, the conductor is left with the same sign as the charging object. Touch a negatively charged rod to a metal sphere and electrons spread onto the sphere, leaving it negative too. (The everyday “shock” off a doorknob is charge transferring by contact from your charged-up body to the earthed metal.)

charged rod touches conductor
electrons flow across
conductor ends the SAME sign

Earthing & Staying Safe

Earthing (grounding) means connecting an object to the Earth by a conductor. Any excess charge then drains away until the object sits at a potential of 0 V. It’s a safety must-have: appliances are wired to an earthed copper conductor, and because copper has a far lower resistance than a person, any stray charge runs to ground through the wire rather than through you.

Static becomes genuinely dangerous when the build-up gets large. A big enough potential difference makes the electric field strong enough to break down the air, and charge leaps across as a spark (a discharge). That can mean electrocution — think lightning — or, near flammable vapour, a spark that ignites a fire or explosion. Refuelling an aircraft is the classic risk: fuel rushing through pipes charges up by friction, so a bonding line to earth is attached to bleed that charge safely away before it can spark.

large charge build-up
huge p.d. → air breaks down
spark / discharge
bonding wire to earth
charge drained safely

🧭 Explaining a charging process

  1. Name the method — friction (rub), induction (near, no touch), or contact (touch)
  2. Talk electrons only — say which way they move and why (attracted or repelled)
  3. State each object’s final sign — gained electrons → negative, lost electrons → positive
  4. Check conservation — if one object goes negative, its partner (or the earth) takes the opposite
  5. For induction, get the order right — earth it, remove the earth, then remove the rod
Quick recap: objects charge by friction, induction or contact, and only electrons ever move. Induction leaves the opposite sign to the charging object; contact leaves the same sign. Earthing drains charge to 0 V, and a bonding wire stops a dangerous spark near fuel.
WE 1

A polythene rod is rubbed with a wool duster and becomes negatively charged. (a) Explain, in terms of electrons, how the rod became negatively charged. (b) State and explain the charge left on the duster.

Part (a) — the rod Rubbing transfers electrons from the duster onto the rod The rod gains electrons, and electrons are negative, so the rod becomes negative Part (b) — the duster The duster lost those same electrons, so it is left positive Charge is conserved: the rod’s negative charge and the duster’s positive charge are equal and opposite.
WE 2

A metal sphere sits on an insulating stand. Describe how it can be given a positive charge using a negatively charged rod, without the rod ever touching the sphere.

Step 1 — bring the rod near Hold the negative rod close to the sphere (no contact) Step 2 — charge separates Electrons in the sphere are repelled to the far side: near side positive, far side negative Step 3 — earth the sphere Connect it to earth; the repelled electrons flow away to earth Step 4 — disconnect in the right order Remove the earth first, then remove the rod sphere left positive (opposite to the rod) Take the earth off after the rod and the electrons flow back — the sphere ends up neutral. Order matters.

💡 Top tips

⚠ Common mistakes

You can now charge things up and drain them safely. Up next: Coulomb’s Law — putting a number on the force between two charges, and seeing how neatly it mirrors Newton’s law of gravitation (with one twist: this force can push as well as pull).

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