Question #36d09

1 Answer
Stefan V.
Oct 1, 2017

Here's what I got.

Explanation:

I think that you also need to include the initial concentration of the acid in the expression of the acid dissociation constant.

For your generic weak acid ionization equilibrium

"HA"_ ((aq)) + "H"_ 2"O"_ ((l)) rightleftharpoons "H"_ 3"O"_ ((aq))^(+) + "A"_ ((aq))^(-)

the acid dissociation constant, K_a, is defined as

K_a = (["H"_3"O"^(+)] * ["A"^(-)])/(["HA"])

As you know, the "pH" of a solution is given by

"pH" = - log(["H"_3"O"^(+)])

This implies that the equilibrium concentration of hydronium cations can be written as

["H"_3"O"^(+)] = 10^(-"pH")

Plug this into the expression for K_a to get

K_a = (10^(-"pH") * ["A"^(-)])/(["HA"])

Now, notice that for every mole of "HA" that ionizes in aqueous solution, you get 1 mole of hydronium cations and 1 mole of "A"^(-).

This means that if you take ["HA"]_0 to be the initial concentration of the weak acid, you can say that the equilibrium concentration of the weak acid, ["HA"], will be equal to

["HA"] = ["HA"]_0 - ["A"^(-)]

This means that in order for the ionization to produce ["A"^(-)], the initial concentration of the weak acid must decrease by ["A"^(-)].

Plug this into the expression for K_a to get

K_a = (10^(-"pH") * ["A"^(-)])/(["HA"]_0 - ["A"^(-)])

At this point, if you know the initial concentration of the acid, you can plug that in and get an expression for K_a in terms of the "pH" of the solution and the equilibrium concentration of "A"^(-).

For example, if you start with "0.1 M" of "HA", you will have

K_a = (10^(-"pH") * ["A"^(-)])/(0.1 - ["A"^(-)])

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