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Question
The ionization constant of acetic acid is 1.74 × 10–5. Calculate the degree of dissociation of acetic acid in its 0.05 M solution. Calculate the concentration of acetate ion in the solution and its pH.
Solution 1
- \[\ce{CH_3COOH ↔ CH_3COO- + H-}\] `"K"_"a" = 1.74 xx 10^(-5)`
- \[\ce{H_2O + H_2O ↔ H_3O+ + OH-}\] `"K"_"w" = 1.0 xx 10^(-14)`
Since Ka >> Kw, :
| CH3COOH | + | H2O | ↔ | CH3COO- | + | H3O+ | |
| Ci | 0.05 | 0 | 0 | ||||
| 0.05 - 0.5 α | 0.05 α | 0.05 α |
`"K"_"a" =((0.05 alpha) (0.05 alpha))/((0.05 - 0.05 alpha))`
`= ((0.05 alpha)(0.05 alpha))/(0.05(1-alpha))`
`= (0.05 alpha^2)/(1 - alpha)`
`1.74 xx 10^(-5) = (0.05 alpha^2)/(1 - alpha)`
`1.74 xx 10^(-5) - 1.74 xx 10^(-5) alpha = 0.05alpha^2`
`0.05 alpha^2 + 1.74 xx 10^(-5) alpha - 1.74 xx 10^(-5)`
`"D" = "b"^2 - "4c"`
`= (1.74 xx 10^(-5))^2 - 4(.05)(1.74 xx 10^(-5))`
`= 3.02 xx 10^(-23) + .348 xx 10^(-5)`
`alpha = sqrt(("K"_"a")/"c")`
`alpha = sqrt(((1.74 xx 10^(-5)))/0.05`
`= sqrt((34.8 xx 10^(-5) xx 10)/10)`
`= sqrt(3.48 xx 10^(-6))`
\[\ce{CH_3COOH ↔ CH_3COO- + H+}\]
α1.86 × 10-3
`["CH"_3"COO"^-] = 0.05 xx 1.86 xx 10^-3`
= `(0.93xx 10^(-3))/1000`
= 0.000093
Solution 2
Degree of dissociation,
`alpha = sqrt(("K"_"a")/"c")`
c = 0.05 M
`"Ka" = 1.74 xx 10^(-5)`
Then `alpha = sqrt((1.74 xx 10^(-5))/0.05)`
`alpha = sqrt(34.8 xx 10^(-5))`
`alpha = 1.8610^(-2)`
\[\ce{CH_3COOH ↔ CH_3COO- + H+}\]
Thus, concentration of CH3COO– = c.α
`= 0.05 xx 1.86 xx 10^(-2)`
`= 0.093 xx 10^(-2)`
= 0.00093 M
Since `["oAc"^(-)] = ["H"^+]`
`["H"^+] = 0.00093 = 0.093 xx 10^(-2)`
`"pH" = -log["H"^+]`
`= - log(0.093 xx 10^(-2))`
∴ pH = 3.03
Hence, the concentration of acetate ion in the solution is 0.00093 M and its Ph is 3.03.
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