Weak Acids and Bases
This lesson covers:
- The acid dissociation constant (Ka) for weak acids
- Using Ka to calculate the pH of weak acids
- Determining acid concentration or Ka from pH
- The relationship between pKa and Ka
Ka is the acid dissociation constant
Weak acids, such as ethanoic acid (CH3COOH), only partially dissociate in aqueous solution. This means the concentration of H+ ions is less than the initial concentration of the acid.
To measure how much a weak acid dissociates, we use the acid dissociation constant, Ka.
For a generic weak acid HA, the dissociation equilibrium is represented as:
HA(aq) ⇌ H+(aq) + A-(aq)
The formula for Ka based on this equilibrium is:
Ka =[HA][H+][A−]
Where:
- [HA] is the concentration of the acid that has not dissociated
- [H+] is the concentration of hydrogen ions
- [A-] is the concentration of the conjugate base
Ka has units of mol dm-3.
The larger the Ka value, the stronger the weak acid.
Calculating pH of weak acids using Ka
The Ka value for a weak acid is constant at a specific temperature and does not depend on the concentration. This property allows us to calculate the pH of a weak acid solution if we know the Ka value and the initial concentration of the acid.
Worked example 1 - Calculating the pH of a weak acid solution
Calculate the pH of a 0.0100 mol dm-3 solution of ethanoic acid, given that its Ka is 1.75×10−5 mol dm-3 at 298 K.
Step 1: Ka equation
Ka =[CH3COOH][H+]2
Step 2: Rearrange Ka equation
[H+]=√ Ka × [CH3COOH]
Step 3: Substitution and correct evaluation
[H+]=√(1.75×10−5)×0.0100=4.18×10−4 mol dm−3
Step 4: Calculate pH
pH =−log10[H+]=−log10(4.18×10−4)=3.38
Thus, the pH of the 0.01 mol dm-3 ethanoic acid solution is 3.88.
Determining acid concentration or Ka from pH
We can use the same principles to find either the starting concentration of a weak acid or its Ka value if the pH is given.
Worked example 2 - Calculating the concentration of propanoic acid from pH
Given a propanoic acid solution's pH is 2.89 and its Ka is 1.34×10−5 mol dm-3 at 298 K, calculate the acid's concentration.
Step 1: Calculate [H+]
[H+] = 10-pH = 10-2.89 = 1.29 x 10-3 mol dm-3
Step 2: Ka equation
Ka =[CH3CH2COOH][H+]2
Step 3: Rearrange Ka equation
[CH3CH2COOH]=Ka[H+]2
Step 4: Substitution and correct evaluation
[CH3CH2COOH]=(1.34×10−5)(1.29×10−3)2=0.124 mol dm−3
Hence, the concentration of the propanoic acid solution is 0.124 mol dm-3.
Worked example 3 - Calculating the Ka of hydrofluoric acid
Given a hydrofluoric acid (HF) solution's pH is 3.14 and its concentration is 0.100 mol dm-3, calculate the Ka for hydrofluoric acid.
Step 1: Calculate [H+]
[H+] = 10-pH = 10-3.14 = 7.24 x 10-4 mol dm-3
Step 2: Ka equation
Ka =[HF][H+]2
Step 3: Substition and correct evaluation
Ka =0.100(7.24×10−4)2=5.25×10−6 mol dm−3
Therefore, the Ka of hydrofluoric acid in this solution is 5.25 × 10-6 mol dm-3.
The relationship between pKa and Ka
pKa offers another way to express the acid dissociation constant, defined as:
pKa = -log10(Ka)
Conversely, we can find Ka from pKa through:
Ka = 10-pKa
The smaller the pKa value, the stronger the weak acid.
Worked example 4 - Calculating pKa from Ka
Given the Ka of carbonic acid is 4.5×10−7 mol dm−3, calculate its pKa.
Step 1: pKa equation
pKa = -log10(Ka)
Step 2: Substitution and correct evaluation
pKa =−log10(4.5×10−7)=6.3
Thus, the pKa of carbonic acid is 6.3.
Worked example 5 - Calculating Ka from pKa
Given the pKa of formic acid is 3.7, calculate its Ka value.
Step 1: Ka equation
Ka = 10-pKa
Step 2: Substitution and correct evaluation
Ka = 10-3.7 = 2.0 x 10-4 mol dm-3
Therefore, formic acid’s Ka value is 2.0×10−4 mol dm−3
Using pKa in calculations
If you're given a pKa value instead of Ka for a problem, convert pKa to Ka before applying the Ka formula.
Worked example 6 - Calculating the pH of a benzoic acid solution
Calculate the pH of a 0.0500 mol dm-3 solution of benzoic acid, given its pKa is 4.20.
Step 1: Calculate Ka
Ka = 10-pKa = 10-4.20 = 6.31 x 10-5 mol dm-3
Step 2: Ka equation
Ka =[C6H5COOH][H+]2
Step 3: Rearrange Ka equation
[H+]=√ Ka × [C6H5COOH]
Step 4: Substitution and correct evaluation
[H+]=√(6.31×10−5)×0.0500=1.78×10−3 mol dm−3
Step 5: Calculate pH
pH =−log10[H+]=−log10(1.78×10−3)=2.75
Therefore, the pH of the 0.0500 mol dm-3 benzoic acid solution is 2.75.