pH titration curves and indicators
CIE A-Level Chemistry· 20 min read
1. Shapes of titration curves for different acid-base combinations★★☆☆☆⏱ 8 min
The shape of a pH titration curve depends only on the strengths of the acid and base used. All titrations of strong/weak monoprotic acids with strong/weak bases have a characteristic sigmoid shape, with a large vertical change in pH at the equivalence point.
Equivalence point
The point in a titration where the amount of titrant added is exactly chemically equivalent to the amount of analyte present in the sample
Example:
For 25 cm³ 0.1 mol dm⁻³ HCl titrated with 0.1 mol dm⁻³ NaOH, equivalence point occurs at 25 cm³ NaOH added
Acid strength | Base strength | Equivalence pH | Vertical pH range |
|---|---|---|---|
Strong | Strong | 7 | 3 → 11 |
Strong | Weak | <7 | 3 → 8 |
Weak | Strong |
| 6 → 11 |
Weak | Weak | ~7 | None (very small change) |
Sketch the pH titration curve when 0.1 mol dm⁻³ ethanoic acid (weak acid) in a conical flask is titrated with 0.1 mol dm⁻³ sodium hydroxide (strong base). Label the equivalence point pH.
- 1
- Initial pH: Ethanoic acid is a weak acid, so initial pH is ~3, between 1 and 7.
- 2
- As NaOH is added, pH increases slowly, forming a buffer region where pH changes very little.
- 3
- Equivalence point occurs when moles of NaOH equal moles of ethanoic acid. All ethanoic acid is converted to ethanoate ions, so pH is basic (~8.5).
- 4
- The vertical region of the curve spans approximately pH 6 to 11, matching the table above.
- 5
- After equivalence, pH levels off around 13 as excess strong NaOH is added.
Exam tip:
Always check which species is in the conical flask to get the correct initial pH for the curve.
2. Key features: the half-equivalence point★★★☆☆⏱ 6 min
Titration curves have other useful features beyond the equivalence point. The half-equivalence point gives a direct way to calculate the pKa of a weak acid or pKb of a weak base.
Half-equivalence point
The point where half the volume of titrant needed to reach equivalence has been added. At this point, the concentration of the weak acid equals the concentration of its conjugate base.
Example:
For the titration above with equivalence at 25 cm³ NaOH, half-equivalence is at 12.5 cm³ NaOH added.
A 25 cm³ sample of unknown weak monoprotic acid is titrated with 0.10 mol dm⁻³ NaOH. Equivalence is reached at 18.5 cm³ NaOH. At 9.25 cm³ NaOH added, pH is 3.72. What is the pKa of the acid?
- 1
- 9.25 cm³ is exactly half of 18.5 cm³, so this is the half-equivalence point.
- 2
- At half-equivalence, pH equals pKa for a weak acid analyte.
- 3
- Therefore pKa = 3.72.
3. Indicators as weak acids★★☆☆☆⏱ 5 min
Acid-base indicators are weak acids (or rarely weak bases) where the undissociated acid (HIn) and conjugate base (In⁻) have distinct different colours. The dissociation equilibrium is:
The human eye can only see the dominant colour when one form is at least 10 times more concentrated than the other. This means the indicator changes colour over the pH range .
End point
The point in a titration where the indicator changes colour, which is the experimental signal to stop adding titrant. A good indicator has an end point that matches the equivalence point pH.
Phenolphthalein has a pKa of 9.4. What pH range does it change colour over?
- 1
- The colour change range is always .
- 2
- Range = to = 8.4 to 10.4.
4. Selecting a suitable indicator★★★☆☆⏱ 6 min
An indicator is suitable for a titration if its entire pH range of colour change falls within the vertical region of the titration curve. This ensures the end point occurs at the same volume as the equivalence point.
Which indicator is suitable for titration of hydrochloric acid (strong acid) with ammonia (weak base): methyl orange (3.1-4.4) or phenolphthalein (8.2-10.0)?
- 1
- For strong acid + weak base, the vertical region of the titration curve is pH 3 to 8.
- 2
- Methyl orange's range 3.1-4.4 falls entirely within this vertical region.
- 3
- Phenolphthalein's range 8.2-10.0 is above the vertical region, so it will change colour after equivalence, giving an inaccurate result.
- 4
- Therefore methyl orange is the suitable indicator.
5. Common Pitfalls
Wrong move:
Confusing equivalence point and end point
Why:
Equivalence point is the theoretical point where moles are equal; end point is the experimental point where the indicator changes colour. They are not identical.
Correct move:
Remember that a good indicator is chosen so that end point is as close as possible to equivalence point.
Wrong move:
Starting the curve at pH 7 when the conical flask contains a strong acid
Why:
Failing to account for excess analyte before any titrant is added, leading to an incorrect initial pH.
Correct move:
Always check which species is in the conical flask to get the correct starting pH for the curve.
Wrong move:
Claiming pH = pKb at half-equivalence for a weak base titrated with strong acid
Why:
For a weak base analyte, it is pOH that equals pKb at half-equivalence, not pH.
Correct move:
For weak base analytes, so at half-equivalence.
Wrong move:
Choosing an indicator with pKa = 7 for any titration
Why:
Equivalence point is only pH 7 for strong acid + strong base titrations.
Correct move:
Always match the indicator's range to the vertical region of the specific titration.
Wrong move:
Using an indicator for weak acid-weak base titrations
Why:
There is no sharp vertical pH change at equivalence, so the indicator changes colour gradually instead of suddenly.
Correct move:
Weak acid-weak base titrations are not used for quantitative analysis with indicators.
6. Quick Reference Cheatsheet
Titration Type | Equivalence pH | Vertical Range | Suitable Indicator |
|---|---|---|---|
Strong acid + Strong base | 7 | 3 – 11 | Phenolphthalein / Methyl orange |
Strong acid + Weak base | <7 | 3 – 8 | Methyl orange (pKa ~3.7) |
Weak acid + Strong base |
| 6 – 11 | Phenolphthalein (pKa ~9.4) |
Weak acid + Weak base | ~7 | None | No suitable indicator |
When this came up on past exams
AI-estimated based on syllabus patterns — cross-check with official past papers for accuracy. Use only as revision-focus signals.
- 2023 · 1
Indicator selection for titration
- 2022 · 2
Sketch titration curve, label features
- 2021 · 4
Calculate pKa from half-equivalence pH
Going deeper
- practical guideCIE A-Level Titration Practical TechniquesFor practical assessment preparation
What's Next
Understanding titration curves is the foundation for learning about acid-base buffers, as the buffer region of a titration curve corresponds to the range where a solution resists pH changes. This topic is also heavily linked to pKa determination, a common extended response question that tests your understanding of half-equivalence points. For practical exams, you will need to apply this knowledge to select indicators for unknown titrations and interpret given titration curves to extract data. Mastery of this sub-topic is essential for all further acid-base equilibrium topics in CIE A-Level Chemistry.
