IB Chemistry HL Topic 4 — Measuring Enthalpy Change Paper 1 & 2 Core idea ~9 min read

Exothermic and Endothermic Reactions

Two words, one minus sign, and a surprising number of lost marks. Almost every mistake here comes from forgetting that the thermometer is sitting in the surroundings, while ΔH describes the system. Get that straight and the signs stop being guesswork.

📘 What you need to know

Enthalpy: the energy stored in the chemicals

Bonds are stores of chemical energy. Add up everything stored in a substance under normal laboratory conditions (constant pressure, open to the atmosphere) and you have its enthalpy, symbol H.

Here is the awkward truth: nobody can measure H. There is no absolute zero point for enthalpy that we can start counting from. What we can do is measure how much it changes during a reaction, and that is all chemistry ever needs.

The definition everything rests on ΔH = H(products) − H(reactants)

Read the order of that subtraction carefully — products first. If the products ended up with less stored energy than the reactants, the subtraction gives a negative answer, and the energy that is no longer in the chemicals has gone out into the surroundings.

Think of enthalpy like money in a bank account. You cannot see the balance, but you can see every deposit and withdrawal. ΔH is the withdrawal slip: negative means the system paid out.

Exothermic reactions

In an exothermic reaction, energy flows out of the chemicals and into everything around them. Trace what happens step by step:

Combustion, neutralisation, respiration, most metal displacement reactions and the setting of cement are all exothermic. If a reaction makes something get warm, that is your clue.

Endothermic reactions

Now run the argument backwards. Energy is pulled in from the surroundings and locked into the new bonds:

Thermal decomposition (heating a metal carbonate), photosynthesis, dissolving ammonium nitrate and the reaction in an instant cold pack are all endothermic.

Enthalpy level diagrams: which way did the energy go? EXOTHERMIC enthalpy reactants products ΔH is negative energy out, surroundings warm up ENDOTHERMIC enthalpy reactants products ΔH is positive energy in, surroundings cool downThe arrow always runs from reactants to products, never the other way. Draw the arrow first and the sign of delta H looks after itself.
Notice that the vertical axis is enthalpy, not temperature, and the horizontal direction is simply the progress of the reaction. Only the two levels matter.

Why is any reaction exothermic in the first place?

This is the part most notes skip, and it is the part that makes the sign obvious rather than memorised. Every reaction does two jobs:

The overall ΔH is simply the balance of the two. If making the new bonds releases more than breaking the old ones cost, there is energy left over and it escapes as heat. That is an exothermic reaction. Here is the balance sheet for hydrogen burning in chlorine, using bond enthalpies from the data booklet:

H₂ + Cl₂ → 2HCl ENERGY IN: bonds broken 1 × H−H 436 kJ 1 × Cl−Cl 242 kJ total in 678 kJ ENERGY OUT: bonds made 2 × H−Cl 862 kJ (2 × 431 kJ) total out 862 kJ ΔH = 678 − 862 = −184 kJ mol⁻¹More energy out than in, so the reaction is exothermic. The leftover 184 kJ per mole is what heats up the surroundings.
You will meet this calculation properly under bond enthalpies. For now it is here to show why a reaction comes out exothermic, rather than asking you to remember that it does.

Spotting it in the lab and in the question

What you observeTypeSign of ΔHEveryday examples
Thermometer reading risesExothermicNegativeBurning fuels, neutralising acid with alkali, adding magnesium to acid
Thermometer reading fallsEndothermicPositiveDissolving ammonium nitrate, instant cold packs, heating limestone
Beaker feels hot to touchExothermicNegativeSetting cement, iron rusting inside a hand warmer
Beaker feels cold to touchEndothermicPositiveCitric acid with sodium hydrogencarbonate
Careful with “gives out heat”. A reaction that is being heated by a Bunsen burner is not automatically endothermic. Heating just gets the reaction started or speeds it up. Ask instead: once it is going, does the mixture warm the surroundings or cool them?

Reverse the reaction and the sign flips

Enthalpy changes are reversible bookkeeping. If a forward reaction releases 184 kJ mol−1, then pushing it backwards must cost the same 184 kJ mol−1. Same magnitude, opposite sign. This is worth internalising now because it is the whole engine behind Hess’s Law later on.

Reversing a reaction ΔH(reverse) = −ΔH(forward)

Energetically favourable is not the same as fast

An exothermic reaction is going downhill in energy, which is why chemists call it energetically favourable. That does not mean it will happen when you want it to. A lump of coal sitting in air has a hugely negative ΔH available to it and does nothing at all until you light it.

The missing ingredient is rate. A reaction can be energetically favourable and still be so slow it looks dead; we say it is kinetically controlled. Enthalpy tells you where the reaction wants to end up. Kinetics tells you how long you will be waiting.

If a question asks why a favourable reaction does not appear to happen, the answer they want is almost always about the activation energy, which is exactly what the next page is about.
WORKED EXAMPLE

50 cm3 of sodium hydroxide solution is placed in a polystyrene cup at 21.3 °C. Hydrochloric acid is added and the temperature rises to 28.6 °C. State whether the reaction is exothermic or endothermic, give the sign of ΔH, and say what has happened to the enthalpy of the system.

Step 1: What did the thermometer do? ΔT = 28.6 − 21.3 = +7.3 °C the thermometer is in the solution, which is the surroundings Step 2: Surroundings got hotter, so energy left the system Exothermic, ΔH is negative Step 3: What happened to the system? the system lost enthalpy: the products store less energy than the reactants did
WORKED EXAMPLE

Ammonium nitrate is stirred into water and the temperature drops from 20.8 °C to 15.2 °C. Sketch the shape of the enthalpy level diagram in words and state the sign of ΔH.

Step 1: Read the temperature change ΔT = 15.2 − 20.8 = −5.6 °C Step 2: Surroundings cooled, so they gave energy away that energy went into the system, so the system gained enthalpy Step 3: Diagram reactants level low on the left, products level higher on the right, arrow pointing up Endothermic, ΔH is positive
WORKED EXAMPLE

The complete combustion of methane has ΔH = −890 kJ mol−1. Calculate the enthalpy change when (a) 0.500 mol of methane burns, and (b) 1 mol of carbon dioxide and 2 mol of water react to re-form methane and oxygen.

(a) Scale with the amount ΔH = 0.500 × (−890) = −445 kJ half the methane releases half the energy; note the unit is kJ, not kJ mol⁻¹ (b) This is the reverse reaction ΔH = −(−890) = +890 kJ mol⁻¹ (a) −445 kJ (b) +890 kJ mol⁻¹ same size, opposite sign, so the reverse reaction is endothermic

🧩 Getting the sign right, every time

  1. Find the temperature change of the mixture. Up or down?
  2. Remember the mixture is the surroundings, not the system.
  3. Warmer surroundings means energy came out of the system, so ΔH is negative. Colder surroundings means the opposite.
  4. Sanity-check against the enthalpy level diagram: does your arrow point down (negative) or up (positive)?
  5. Only now write the number, and attach the sign before you attach the units.

💡 Exam tip

⚠ Common mix-up

Up next: Energy Profile Diagrams — the same two levels, but this time we draw the hill in between them and find out why favourable reactions can still refuse to start.

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