How do you calculate the pH at the equivalence point for the titration of .190M methylamine with .190M HCl? The Kb of methylamine is 5.0x10^-4.

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How do you calculate the pH at the equivalence point for the titration of .190M methylamine with .190M HCl? The Kb of methylamine is 5.0x10^-4.

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Answer 1 · 2016-06-01T18:26:11

$p H = 5.86$ $pH=5.86$

Explanation:

The net ionic equation for the titration in question is the following:

$C H_{3} N H_{2} + H^{+} \to C H_{3} N H_{3}^{+}$ $CH_3NH_2+H^(+)->CH_3NH_3^(+)$

This exercise will be solved suing two kinds of problems: Stoichiometry problem and equilibrium problem .

Stoichiometry Problem :
At the equivalence point, the number of mole of the acid added is equal to the number o fmole of base present.

Since the concentrations of base and acid are equal, the concentration of the conjugate acid $C H_{3} N H_{3}^{+}$ $CH_3NH_3^(+)$ can be determined as follows:

Since equal volumes of the acid and base should be mixed, and since they are additive, the concentration of $C H_{3} N H_{3}^{+}$ $CH_3NH_3^(+)$ will be half the initial concentration of $C H_{3} N H_{2}$ $CH_3NH_2$ .

Thus, $[C H_{3} N H_{3}^{+}] = 0.095 M$ $[CH_3NH_3^(+)]=0.095M$

Equilibrium Problem :
The conjugate acid that will be the major species at the equivalence point, will be the only significant source of $H^{+}$ $H^(+)$ in the solution and therefore, to find the pH of the solution we should find the $[H^{+}]$ $[H^(+)]$ from the dissociation of $C H_{3} N H_{3}^{+}$ $CH_3NH_3^(+)$ :

$C H_{3} N H_{3}^{+} ⇌ C H_{3} N H_{2} + H^{+}$ $" " " " " " " " " "CH_3NH_3^(+)rightleftharpoons CH_3NH_2+H^(+)$
$I n i t i a l : 0.095 M 0M 0 M$ $Initial: " " " " " "0.095M" " " " "0M" " " " "0M$
$Change : - x M +xM + x M$ $"Change": " " " " " "-xM" " " " "+xM" " "+xM$
$Equilibrium : (0.095 - x) M x M x M$ $"Equilibrium": (0.095-x)M" " " "xM" " "xM$

$K_{a} = \frac{[C H_{3} N H_{2}] [H^{+}]}{[C H_{3} N H_{3}^{+}]}$ $K_a=([CH_3NH_2][H^(+)])/([CH_3NH_3^(+)])$

Note that $K_{w} = K_{a} \times K_{b}$ $K_w=K_axxK_b$

$\Rightarrow K_{a} = \frac{K_{w}}{K_{b}} = \frac{1.0 \times 10^{- 14}}{5.0 \times 10^{- 4}} = 2.0 \times 10^{- 11}$ $=>K_a=(K_w)/(K_b)=(1.0xx10^(-14))/(5.0xx10^(-4))=2.0xx10^(-11)$

$\Rightarrow K_{a} = \frac{[C H_{3} N H_{2}] [H^{+}]}{[C H_{3} N H_{3}^{+}]} = \frac{x \cdot x}{0.095 - x} = \frac{x^{2}}{0.095 - x} = 2.0 \times 10^{- 11}$ $=>K_a=([CH_3NH_2][H^(+)])/([CH_3NH_3^(+)])=(x*x)/(0.095-x)=(x^2)/(0.095-x)=2.0xx10^(-11)$

Solve for $x = 1.38 \times 10^{- 6} M = [H^{+}]$ $x=1.38xx10^(-6)M=[H^(+)]$

Therefore, the pH of the solution is $p H = - log [H^{+}]$ $pH=-log[H^(+)]$

$\Rightarrow p H = - log (1.38 \times 10^{- 6}) = 5.86$ $=>pH=-log(1.38xx10^(-6))=5.86$

Here is a video that explains in details the titration of a weak acid by a strong base:
Acid - Base Equilibria | Weak Acid - Strong Base Titration.

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How do you calculate the pH at the equivalence point for the titration of .190M methylamine with .190M HCl? The Kb of methylamine is 5.0x10^-4.

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