IB Chemistry HL Topic 6 — Proton Transfer Paper 1 & 2 Core skill ~10 min read

Neutralisation Reactions

Mix an acid with a base and something surprisingly tidy happens. Whichever acid and whichever base you pick, the same tiny reaction is going on underneath: a proton meets a hydroxide ion and they make water. Everything else in the equation is just watching.

📘 What you need to know

The reaction hiding underneath

Take the standard example: hydrochloric acid and sodium hydroxide.

The equation you already know HCl(aq) + NaOH(aq) → NaCl(aq) + H2O(l)

Both of these are strong, so in solution they are not really molecules at all — they are ions swimming about. Write them out as ions and something obvious appears.

Cross out the ions that do nothing Sodium and chloride start free and finish free, so they never react. H⁺ + Cl⁻ + Na⁺ + OH⁻ Na⁺ + Cl⁻ + H₂O the crossed-out ions are spectators, unchanged from start to finish So the only real reaction is this: H⁺(aq) + OH⁻(aq) → H₂O(l) Every strong acid plus strong alkali does exactly this. That is why the enthalpy change is always about −57 kJ mol⁻¹.
The spectator ions are not useless — they are the salt. Evaporate the water off and Na+ and Cl are left behind as solid sodium chloride.
This one picture explains why the enthalpy of neutralisation is the same number for HCl with NaOH, HNO3 with KOH, and every other strong-with-strong pair. It is literally the same reaction each time. Swap in a weak acid and the value drops, because some energy has to be spent breaking the weak acid apart first.

Naming the salt

The salt is built from two halves: the positive ion from the base and the negative ion from the acid. So the second word of the name tells you which acid was used.

AcidIon it leaves behindSalts are calledExample
hydrochloric, HClClchloridesNaCl, sodium chloride
nitric, HNO3NO3nitratesKNO3, potassium nitrate
sulfuric, H2SO4SO42−sulfatesMgSO4, magnesium sulfate
ethanoic, CH3COOHCH3COOethanoatesCH3COONa, sodium ethanoate
phosphoric, H3PO4PO43−phosphatesNa3PO4, sodium phosphate
any acid, with ammoniaNH4+ from the baseammonium saltsNH4Cl, ammonium chloride

The five reactions acids do

“Base” is wider than “alkali”. An alkali is a soluble base, but oxides, hydroxides, carbonates and hydrogencarbonates all count as bases too, and they all give you a salt.

The five reactions of an acid Every single one produces a salt. Only the gases differ. acid + metal acid + metal oxide acid + metal hydroxide acid + metal carbonate acid + metal hydrogencarbonate salt + hydrogen salt + water salt + water salt + water + carbon dioxide salt + water + carbon dioxide e.g. Zn + HCl e.g. CuO + H₂SO₄ e.g. NaOH + HCl e.g. CaCO₃ + HCl e.g. NaHCO₃ + HCl Every one makes a salt. Only the metal gives off hydrogen. Carbonates and hydrogencarbonates are the ones that fizz with CO₂.
Only the bottom two rows fizz with carbon dioxide, which is how you test an unknown solid: add acid and look for a gas that turns limewater milky.

Balanced equations for each type

The five, written out 2HCl(aq) + Zn(s) → ZnCl2(aq) + H2(g)
H2SO4(aq) + CuO(s) → CuSO4(aq) + H2O(l)
H2SO4(aq) + Mg(OH)2(s) → MgSO4(aq) + 2H2O(l)
2HCl(aq) + CaCO3(s) → CaCl2(aq) + H2O(l) + CO2(g)
HCl(aq) + NaHCO3(s) → NaCl(aq) + H2O(l) + CO2(g)
Watch the balancing numbers. They come from the charges. Zn2+ needs two Cl, so you need 2HCl. Mg(OH)2 has two hydroxides, so it needs two protons and makes two waters. Get the formula of the salt right first and the rest follows.

🧩 Building any neutralisation equation

  1. Identify the two ions in the salt: the metal (or ammonium) ion from the base, and the acid’s leftover ion.
  2. Balance their charges to get the salt’s formula, e.g. Ca2+ with Cl gives CaCl2.
  3. Add the other products: water always, plus CO2 if you started from a carbonate, or H2 if you started from a metal.
  4. Balance the whole equation and finish with state symbols. Solids that dissolve become (aq).

The energy released

The enthalpy of neutralisation is the enthalpy change when an acid and a base react to form one mole of water.

For any strong acid with any strong base it comes out at about −57 kJ mol−1, which should not surprise you now: the underlying reaction is H+ + OH → H2O every time, and the spectator ions contribute nothing.

Use a weak acid and the value is smaller, perhaps −55 kJ mol−1. The reaction has to keep pulling the weak acid apart to release more protons, and that step absorbs energy, so less is left over to heat the solution.

Worked examples

WORKED EXAMPLE

Write the balanced equation, with state symbols, for nitric acid reacting with copper(II) carbonate.

Step 1: work out the salt Nitric acid leaves NO3, and copper here is Cu2+. Charges balance as Cu(NO3)2 Step 2: add the other products A carbonate always gives water and carbon dioxide as well. Step 3: balance and add states 2HNO3(aq) + CuCO3(s) → Cu(NO3)2(aq) + H2O(l) + CO2(g) Check: 2 N each side, 1 Cu, 2 H, and 9 O each side. 2HNO3(aq) + CuCO3(s) → Cu(NO3)2(aq) + H2O(l) + CO2(g) the 2 in front of HNO₃ comes straight from the 2+ charge on copper
WORKED EXAMPLE

25.0 cm3 of 0.200 mol dm−3 NaOH is exactly neutralised by 0.100 mol dm−3 H2SO4. Calculate the volume of acid used.

Step 1: moles of NaOH n = 0.200 × 0.0250 = 5.00 × 10−3 mol Step 2: use the equation ratio H2SO4 + 2NaOH → Na2SO4 + 2H2O One mole of acid neutralises two of alkali, so halve it. n(H2SO4) = 2.50 × 10−3 mol Step 3: convert moles to volume V = 2.50 × 10−3 ÷ 0.100 = 0.0250 dm3 V = 25.0 cm3 the 2:1 ratio is the whole question — miss it and you get 50.0 cm³
WORKED EXAMPLE

Explain why the enthalpy of neutralisation of HCl with NaOH is almost identical to that of HNO3 with KOH.

Step 1: write both as ionic equations Both reduce to H+(aq) + OH(aq) → H2O(l) Step 2: say what happened to the rest Na+, K+, Cl and NO3 are all spectators and stay aqueous throughout. Step 3: link that to the energy Since the same bonds are made in the same reaction, the same energy is released. Both are really the same reaction, so both give about −57 kJ mol−1 the mark is for naming the shared ionic equation, not for quoting the number

💡 Exam tip

⚠ Common mix-up

Up next: pH Titration Curves. Instead of adding all the alkali at once, we will add it drop by drop and watch what the pH does. The shape of that graph tells you more than any single number could.

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