IB Chemistry SL Topic 4 — Measuring Enthalpy Change Paper 1 & 2 Core idea ~8 min read

The Difference Between Heat and Temperature

In everyday speech these two words mean the same thing. In chemistry they don’t, and the whole of thermochemistry depends on keeping them apart. A spark from a sparkler is at over 1000 °C and lands on your hand harmlessly. A cup of tea at 80 °C would scald you.

📚 What you need to know

Same temperature, different heat

Imagine a full beaker of boiling water and a single drop of boiling water. Both are at 100 °C. Spill the beaker on your hand and you would get a serious burn; the drop would barely register.

SAME TEMPERATURE, DIFFERENT HEATboth are at 100 °C — only one of them will burn youa full beakerlots of particlesone dropvery few particles100 °C100 °CTEMPERATURE = average kinetic energy per particleHEAT = total energy of all the particles added together
Identical temperature, wildly different heat content. The average energy per particle is the same; the number of particles is not.

The particles in both samples are moving at the same average speed — that is what “same temperature” means. But the beaker contains vastly more particles, so the total energy it can hand over to your skin is vastly greater.

The distinction in one line temperature = average energy per particle  ·  heat = total energy of all particles
Think of it like money. Temperature is the average amount each person in a crowd is carrying; heat is the total amount the whole crowd is carrying. A stadium of people each with a pound has far more money than one person with a pound — but the average is identical.

This also explains why particles have kinetic energy at all: they are constantly moving. The faster they move, the more kinetic energy they have, and the higher the temperature you measure.

Units matter here. Temperature is measured in °C or K; heat is an energy, measured in joules. If your answer has the wrong kind of unit, you have answered the wrong question.

System and surroundings

To track energy in a reaction we have to be clear about what we are tracking.

When a reaction gives out heat, that energy hasn’t vanished from the universe. It has moved from the system into the surroundings, which is why the flask feels warm.

OPEN, CLOSED AND ISOLATED SYSTEMSOPENenergymatterCLOSEDenergyISOLATEDnothing gets in or outmost reactions you meet happen in OPEN systems — a beaker on a benchenergy is never created or destroyed, only moved between system and surroundings
What can cross the boundary defines the system. Almost every reaction you carry out is an open one.
Type of systemMatterEnergyExample
OpenCan move in and outCan move in and outA reaction in an open beaker — the usual case
ClosedCannotCan move in and outA sealed flask
IsolatedCannotCannotA perfectly insulated container — very rare

Conservation of energy

Whichever type of system you have, the total energy of system plus surroundings never changes. Energy is only ever moved around or converted from one form to another.

Law of conservation of energy energy cannot be created or destroyed, only transferred

This is why calorimetry works at all. If we can measure how much energy the surroundings gained, we know how much the system lost — and that is the quantity we actually want.

WORKED EXAMPLE

A bath at 40 °C contains far more heat energy than a cup of tea at 80 °C. Explain how this is possible.

Temperature is an AVERAGE per particle Each particle in the tea has more kinetic energy on average than each particle in the bath. Heat is a TOTAL over all particles The bath contains far more water, so far more particles. many particles with less energy each > few particles with more energy each
WORKED EXAMPLE

A neutralisation reaction is carried out in an open beaker. Identify the system and the surroundings, and state what happens to the total energy.

System the acid and alkali reacting Surroundings the water, the beaker, the air, the bench Total energy Energy moves from the system to the surroundings, which warm up. the total stays exactly the same

💡 Exam tip

⚠️ Common mix-up

Up next: Exothermic and Endothermic Reactions — putting a sign on that energy transfer, and learning what it tells you about the reaction.

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