Paul Flowers; William R. Robinson, PhD; Richard Langley; Klaus Theopold

Learning Objectives

By the end of this section, you will be able to:

Extend previously introduced equilibrium concepts to acids and bases that may donate or accept more than one proton

We can classify acids by the number of protons per molecule that they can give up in a reaction. Acids such as HCl, HNO₃, and HCN that contain one ionizable hydrogen atom in each molecule are called monoprotic acids. Their reactions with water are:

\begin{matrix} HCl (a q) + H_{2} O (l) ⟶ H_{3} O^{+} (a q) + {Cl}^{−} (a q) \\ {HNO}_{3} (a q) + H_{2} O (l) ⟶ H_{3} O^{+} (a q) + {NO}_{3}^{−} (a q) \\ HCN (a q) + H_{2} O (l) ⇌ H_{3} O^{+} (a q) + {CN}^{−} (a q) \end{matrix}

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Even though it contains four hydrogen atoms, acetic acid, CH₃CO₂H, is also monoprotic because only the hydrogen atom from the carboxyl group (COOH) reacts with bases:

This image contains two equilibrium reactions. The first shows a C atom bonded to three H atoms and another C atom. The second C atom is double bonded to an O atom and also forms a single bond to another O atom. The second O atom is bonded to an H atom. There is a plus sign and then the molecular formula H subscript 2 O. An equilibrium arrow follows the H subscript 2 O. To the right of the arrow is H subscript 3 O superscript positive sign. There is a plus sign. The final structure shows a C atom bonded the three H atoms and another C atom. This second C atom is double bonded to an O atom and single bonded to another O atom. The entire structure is in brackets and a superscript negative sign appears outside the brackets. The second reaction shows C H subscript 3 C O O H ( a q ) plus H subscript 2 O ( l ) equilibrium arrow H subscript 3 O ( a q ) plus C H subscript 3 C O O superscript negative sign ( a q ).

Similarly, monoprotic bases are bases that will accept a single proton.

Diprotic acids contain two ionizable hydrogen atoms per molecule; ionization of such acids occurs in two steps. The first ionization always takes place to a greater extent than the second ionization. For example, sulfuric acid, a strong acid, ionizes as follows:

\begin{array}{l} First ionization: H_{2} {SO}_{4} (a q) + H_{2} O (l) ⇌ H_{3} O^{+} (a q) + {HSO}_{4}^{−} (a q) K_{a 1} = more than 10^{2}; complete dissociation \\ Second ionization: {HSO}_{4}^{−} (a q) + H_{2} O (l) ⇌ H_{3} O^{+} (a q) + {SO}_{4}^{2−} (a q) K_{a 2} = 1.2 \times 10^{−2} \end{array}

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This stepwise ionization process occurs for all polyprotic acids. When we make a solution of a weak diprotic acid, we get a solution that contains a mixture of acids. Carbonic acid, H₂CO₃, is an example of a weak diprotic acid. The first ionization of carbonic acid yields hydronium ions and bicarbonate ions in small amounts.

\begin{array}{l} First ionization: \\ H_{2} {CO}_{3} (a q) + H_{2} O (l) ⇌ H_{3} O^{+} (a q) + {HCO}_{3}^{−} (a q) K_{H_{2} {CO}_{3}} = \frac{[H_{3} O^{+}] [{HCO}_{3}^{−}]}{[H_{2} {CO}_{3}]} = 4.3 \times 10^{−7} \end{array}

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The bicarbonate ion can also act as an acid. It ionizes and forms hydronium ions and carbonate ions in even smaller quantities.

\begin{array}{l} Second ionization: \\ {HCO}_{3}^{−} (a q) + H_{2} O (l) ⇌ H_{3} O^{+} (a q) + {CO}_{3}^{2−} (a q) K_{{HCO}_{3}^{−}} = \frac{[H_{3} O^{+}] [{CO}_{3}^{2−}]}{[{HCO}_{3}^{−}]} = 5.6 \times 10^{−11} \end{array}

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$K_{H_{2} {CO}_{3}}$ is larger than $K_{{HCO}_{3}^{−}}$ by a factor of 10⁴, so H₂CO₃ is the dominant producer of hydronium ion in the solution. This means that little of the ${HCO}_{3}^{−}$ formed by the ionization of H₂CO₃ ionizes to give hydronium ions (and carbonate ions), and the concentrations of H₃O⁺ and ${HCO}_{3}^{−}$ are practically equal in a pure aqueous solution of H₂CO₃.

If the first ionization constant of a weak diprotic acid is larger than the second by a factor of at least 20, it is appropriate to treat the first ionization separately and calculate concentrations resulting from it before calculating concentrations of species resulting from subsequent ionization. This can simplify our work considerably because we can determine the concentration of H₃O⁺ and the conjugate base from the first ionization, then determine the concentration of the conjugate base of the second ionization in a solution with concentrations determined by the first ionization.

Example 14.19

Ionization of a Diprotic Acid

When we buy soda water (carbonated water), we are buying a solution of carbon dioxide in water. The solution is acidic because CO₂ reacts with water to form carbonic acid, H₂CO₃. What are

[H_{3} O^{+}],

[{HCO}_{3}^{−}],

and

[{CO}_{3}^{2−}]

in a saturated solution of CO₂ with an initial [H₂CO₃] = 0.033 M?

H_{2} {CO}_{3} (a q) + H_{2} O (l) ⇌ H_{3} O^{+} (a q) + {HCO}_{3}^{−} (a q) K_{a 1} = 4.3 \times 10^{−7}

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{HCO}_{3}^{−} (a q) + H_{2} O (l) ⇌ H_{3} O^{+} (a q) + {CO}_{3}^{2−} (a q) K_{a2} = 5.6 \times 10^{−11}

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Solution

As indicated by the ionization constants, H₂CO₃ is a much stronger acid than

{HCO}_{3}^{−},

so H₂CO₃ is the dominant producer of hydronium ion in solution. Thus there are two parts in the solution of this problem: (1) Using the customary four steps, we determine the concentration of H₃O⁺ and

{HCO}_{3}^{−}

produced by ionization of H₂CO₃. (2) Then we determine the concentration of

{CO}_{3}^{2−}

in a solution with the concentration of H₃O⁺ and

{HCO}_{3}^{−}

determined in (1). To summarize:

Four tan rectangles are shown that are connected with right pointing arrows. The first is labeled “left bracket H subscript 2 C O subscript 3 right bracket.” The second is labeled “left bracket H subscript 3 O superscript plus right bracket and left bracket H C O subscript 3 superscript negative right bracket from H subscript 2 C O subscript 3.” The third is labeled “left bracket C O subscript 3 superscript 2 negative right bracket from H C O subscript 3 superscript negative.”

Step 1.
Determine the concentrations of $H_{3} O^{+}$ and $H C O_{3}^{−} .$

$H_{2} {CO}_{3} (a q) + H_{2} O (l) ⇌ H_{3} O^{+} (a q) + {HCO}_{3}^{−} (a q) K_{a 1} = 4.3 \times 10^{−7}$
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As for the ionization of any other weak acid:

An abbreviated table of changes and concentrations shows:

Substituting the equilibrium concentrations into the equilibrium gives us:

$K_{H_{2} {CO}_{3}} = \frac{[H_{3} O^{+}] [{HCO}_{3}^{−}]}{[H_{2} {CO}_{3}]} = \frac{(x) (x)}{0.033 - x} = 4.3 \times 10^{−7}$
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Solving the preceding equation making our standard assumptions gives:

$x = 1.2 \times 10^{−4}$
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Thus:

$[H_{2} {CO}_{3}] = 0.033 M$
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$[H_{3} O^{+}] = [{HCO}_{3}^{−}] = 1.2 \times 10^{−4} M$
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Step 2.
Determine the concentration of $C O_{3}^{2−}$ in a solution at equilibrium with $[H_{3} O^{+}]$ and $[H C O_{3}^{−}]$ both equal to 1.2 $\times$ 10⁻⁴ M.

${HCO}_{3}^{−} (a q) + H_{2} O (l) ⇌ H_{3} O^{+} (a q) + {CO}_{3}^{2−} (a q)$
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$K_{{HCO}_{3}^{−}} = \frac{[H_{3} O^{+}] [{CO}_{3}^{2−}]}{[{HCO}_{3}^{−}]} = \frac{(1.2 \times 10^{−4}) [{CO}_{3}^{2−}]}{1.2 \times 10^{−4}}$
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$[{CO}_{3}^{2−}] = \frac{(5.6 \times 10^{−11}) (1.2 \times 10^{−4})}{1.2 \times 10^{−4}} = 5.6 \times 10^{−11} M$
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To summarize: In part 1 of this example, we found that the H₂CO₃ in a 0.033-M solution ionizes slightly and at equilibrium [H₂CO₃] = 0.033 M; $[H_{3} O^{+}]$ = 1.2 $\times$ 10⁻⁴; and $[{HCO}_{3}^{−}] = 1.2 \times 10^{−4} M .$ In part 2, we determined that $[{CO}_{3}^{2−}] = 5.6 \times 10^{−11} M .$

Check Your Learning

The concentration of H₂S in a saturated aqueous solution at room temperature is approximately 0.1 M. Calculate

[H_{3} O^{+}],

[HS⁻], and [S²⁻] in the solution:

H_{2} S (a q) + H_{2} O (l) ⇌ H_{3} O^{+} (a q) + {HS}^{−} (a q) K_{a 1} = 8.9 \times 10^{−8}

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{HS}^{−} (a q) + H_{2} O (l) ⇌ H_{3} O^{+} (a q) + S^{2−} (a q) K_{a 2} = 1.0 \times 10^{−19}

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Answer:

[H₂S] = 0.1 M; $[H_{3} O^{+}]$ = [HS⁻] = 0.000094 M; [S²⁻] = 1 $\times$ 10⁻¹⁹ M
We note that the concentration of the sulfide ion is the same as K_a2. This is due to the fact that each subsequent dissociation occurs to a lesser degree (as acid gets weaker).

A triprotic acid is an acid that has three dissociable protons that undergo stepwise ionization: Phosphoric acid is a typical example:

\begin{array}{l} First ionization: H_{3} {PO}_{4} (a q) + H_{2} O (l) ⇌ H_{3} O^{+} (a q) + H_{2} {PO}_{4}^{−} (a q) K_{a 1} = 7.5 \times 10^{−3} \\ Second ionization: H_{2} {PO}_{4}^{−} (a q) + H_{2} O (l) ⇌ H_{3} O^{+} (a q) + {HPO}_{4}^{2−} (a q) K_{a 2} = 6.2 \times 10^{−8} \\ Third ionization: {HPO}_{4}^{2−} (a q) + H_{2} O (l) ⇌ H_{3} O^{+} (a q) + {PO}_{4}^{3−} (a q) K_{a 3} = 4.2 \times 10^{−13} \end{array}

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As with the diprotic acids, the differences in the ionization constants of these reactions tell us that in each successive step the degree of ionization is significantly weaker. This is a general characteristic of polyprotic acids and successive ionization constants often differ by a factor of about 10⁵ to 10⁶.

This set of three dissociation reactions may appear to make calculations of equilibrium concentrations in a solution of H₃PO₄ complicated. However, because the successive ionization constants differ by a factor of 10⁵ to 10⁶, the calculations can be broken down into a series of parts similar to those for diprotic acids.

Polyprotic bases can accept more than one hydrogen ion in solution. The carbonate ion is an example of a diprotic base, since it can accept up to two protons. Solutions of alkali metal carbonates are quite alkaline, due to the reactions:

H_{2} O (l) + {CO}_{3}^{2−} (a q) ⇌ {HCO}_{3}^{−} (a q) + {OH}^{−} (a q) and H_{2} O (l) + {HCO}_{3}^{−} (a q) ⇌ H_{2} {CO}_{3} (a q) + {OH}^{−} (a q)

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14.5 Polyprotic Acids

Ionization of a Diprotic Acid

Solution

Check Your Learning