Homework Answers
Lets start the problem by answering how to calculate the H+ concentration. You are given the pH values, so we can use the formula pH = -log[H+] and rearrange it to calculate the [H+].
[H+] = 10 -pH
i. pH = 2.92 : [H+] = 10 -pH = 10 -2.92 = 0.0012 M
ii. pH = 3.34: [H+] = 10 -pH = 10 -3.34 = 4.57x 10-4 M
iii. pH = 3.74: [H+] = 10 -pH = 10 -3.74 = 1.82 x 10-4 M
From the net ionic equation, we can see that [H+] and [C2H3O2-] are in 1:1 ratio which means concentration of the acetate ion is same as the concentration of hydrogen ion / hydronium ion.
i. pH = 2.92 : [H+] = 10 -pH = 10 -2.92 = 0.0012 M = [C2H3O2-]
ii. pH = 3.34: [H+] = 10 -pH = 10 -3.34 = 4.57x 10-4 M = [C2H3O2-]
iii. pH = 3.74: [H+] = 10 -pH = 10 -3.74 = 1.82 x 10-4 M = [C2H3O2-]
The equilibrium concentration expression for an equation is given by K = [products] / [reactants]
From the ionic equation we can write K = [H+] [C2H3O2-] / [CH3COOH]
i. K = [0.0012 M][0.0012 M] / [0.1 M] = 1.44 x 10-5
ii. K = [4.57x 10-4 M] [4.57x 10-4 M] / [0.01 M] = 2.09 x 10-5
iii. K = [1.82 x 10-4 M] [1.82 x 10-4 M] / [0.001M] = 3.31 x 10-5
Percent Dissociation = (concentration of dissociated species) / (original concentration of acid) x 100
i. % dissociation = 0.0012 / 0.1 x 100 = 1.2%
ii. % dissociation = 4.57x 10-4 / 0.01 x 100 = 4.57%
iii. % dissociation = 1.82 x 10-4 / 0.001 X 100 = 18.2%
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