1. Practical Aim & Weak Acid Equilibria
The aim of Required Practical 9 is to plot a continuous titration curve by recording pH during the addition of a strong base (sodium hydroxide, NaOH) to a weak acid (e.g. ethanoic acid, CH3COOH), and determine the experimental acid dissociation constant (Ka):
Ka = ( [H+] * [A-] ) / [HA]
pKa = -log10(Ka) ⇔ Ka = 10^(-pKa)
2. Digital pH Meter Calibration Protocol
A digital pH electrode measures potential difference across a thin glass membrane sensitive to [H+]. Over time, electrode sensitivity drifts, making pre-experimental calibration mandatory:
Multi-Point Buffer Calibration
- Rinse the pH probe thoroughly with deionised water from a wash bottle and gently dab dry with a soft tissue (do not rub the delicate glass bulb).
- Immerse the probe into a commercial pH 7.00 standard buffer solution. Adjust the calibration dial until the display reads exactly 7.00.
- Rinse the probe again with deionised water.
- Immerse the probe into a pH 4.00 standard buffer (and subsequently a pH 10.00 buffer for full-scale calibration). Record the reading and construct a calibration graph (pH meter reading vs true buffer pH).
Why Rinsing with Water is Essential
Transferring the probe directly from one buffer solution to another without thorough washing causes cross-contamination of buffers. Residual acidic or basic droplets on the glass bulb alter the local hydrogen ion concentration, generating invalid calibration curves.
3. Step-by-Step Titration Protocol & Fine Increments
- Using a volumetric pipette, transfer 25.00 cm3 of 0.100 mol dm^-3 ethanoic acid into a clean 100 cm3 glass beaker.
- Fill a burette with 0.100 mol dm^-3 sodium hydroxide solution, ensuring the tip is full and air bubbles are cleared.
- Clamp the calibrated pH electrode vertically in the beaker so the glass bulb is completely submerged in acid but positioned safely above the rotating magnetic stirrer bar.
- Turn on the magnetic stirrer at a slow, constant speed to ensure rapid, uniform mixing without splashing.
- Record the initial pH before any base is added (V = 0.00 cm3).
- Add NaOH from the burette in 1.00 cm3 portions. After each addition, wait 5 seconds for the reading to stabilise and record the pH.
- Approaching Equivalence (Near ~22 cm3): As the rate of pH change accelerates (>0.3 pH units per addition), switch to fine dropwise additions (0.10 cm3 increments). This captures the steep vertical inflection accurately.
- Continue adding 1.00 cm3 portions past equivalence up to ~30 cm3 until the pH plateaus in the high alkaline range (pH ~ 12).
4. The Half-Neutralisation Point (pH = pKa)
The central theoretical feature of a weak acid-strong base titration curve is the half-neutralisation point:
V_equiv).2. At exactly half the volume required for neutralisation (
V_half = V_equiv / 2), exactly 50% of the initial HA has reacted:[HA] = [A-]3. Substituting into the equilibrium constant expression:
Ka = ( [H+] * [A-] ) / [HA] = [H+] * ( [A-] / [HA] )4. Since
[A-] / [HA] = 1, it follows that:Ka = [H+]
5. Taking the negative logarithm of both sides:
-log10(Ka) = -log10([H+]) → pKa = pH at half-neutralisation
6. To find Ka: Ka = 10^(-pH).
5. The Buffer Action Plateau
Notice the extended, gently sloping region between 2 cm3 and 20 cm3 on the curve:
- This is the acidic buffer region. The solution contains significant, comparable concentrations of both unreacted weak acid (HA) and its conjugate base (A- from the formed sodium salt).
- Small additions of OH- react with HA to form A- and H2O, preventing sharp rises in [OH-] or drops in [H+].
- Buffer capacity is highest at V_half, where
[HA] = [A-].
6. Indicator Selection Criteria
To titrate accurately without a digital pH meter, an acid-base indicator must be chosen whose pH transition range falls entirely within the steep vertical inflection of the curve:
| Indicator | pH Transition Range | Acid Colour → Base Colour | Suitable for Weak Acid + Strong Base? |
|---|---|---|---|
| Phenolphthalein | pH 8.3 to 10.0 | Colourless → Pink | YES: Perfectly suited. The vertical jump occurs between pH 7 and 11. Phenolphthalein changes color sharply at equivalence. |
| Methyl Orange | pH 3.1 to 4.4 | Red → Yellow | NO: Completely unsuitable. Methyl orange changes color in the acidic buffer region (pH 3-4) long before the vertical equivalence jump is reached. |
7. Worked Ka Determination Problem
Problem: In an RP9 experiment, 25.0 cm3 of an unknown weak monobasic carboxylic acid HA is titrated against 0.100 mol dm^-3 NaOH. The titration curve reveals that:
- The steep vertical equivalence point inflection occurs at
V_equiv = 23.40 cm3with an equivalence pH of 8.85. - At exactly half-neutralisation (
V = 11.70 cm3), the measured pH is4.82.
1. Calculate the acid dissociation constant (Ka) of the weak acid.
2. Calculate the initial concentration of the weak acid solution in mol dm^-3.
Step 1: Determine Ka from pH at half-neutralisation
At half-neutralisation, [HA] = [A-], so pH = pKa.
pKa = 4.82
Ka = 10^(-pKa) = 10^(-4.82) = 1.5136 * 10^-5 mol dm^-3
Ka = 1.51 * 10^-5 mol dm^-3 (3 significant figures)
Step 2: Calculate initial concentration of weak acid
Moles of NaOH at equivalence = c * V = 0.100 * (23.40 / 1000) = 2.34 * 10^-3 mol
Stoichiometry HA : NaOH = 1 : 1
Moles of HA in 25.00 cm3 = 2.34 * 10^-3 mol
Initial [HA] = moles / volume = (2.34 * 10^-3) / 0.02500 = 0.0936 mol dm^-3
Final Answer: Ka = 1.51 * 10^-5 mol dm^-3, [HA] = 0.0936 mol dm^-3
8. Practice Exam Questions
Question 1: In the titration of 25.0 cm^3 of a weak acid with 0.100 mol dm^-3 NaOH, the equivalence point occurs at 20.00 cm^3. At what volume of added NaOH does pH equal pKa?
Show Answer & Explanation
Correct Answer: B
The half-neutralisation point occurs at exactly half the equivalence volume (20.00 / 2 = 10.00 cm^3). Here [HA] = [A-], simplifying the Ka expression so that [H+] = Ka, hence pH = pKa.
Question 2: Why is phenolphthalein a suitable indicator for a weak acid - strong base titration, whereas methyl orange is not?
Show Answer & Explanation
Correct Answer: B
The vertical equivalence section for a weak acid-strong base titration lies in the alkaline region (pH 7-11). Phenolphthalein's range (8.3-10.0) matches this perfectly. Methyl orange changes in the acidic buffer zone, giving a false premature endpoint.