# 11.12: Conjugate Acid-Base Pairs

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Through examples found in the sections on acids and bases proton-transfer processes are broken into two hypothetical steps: (1) donation of a proton by an acid, and (2) acceptance of a proton by a base. (Water served as the base in the acid example and as the acid in the base example [amphiprotic]). The hypothetical steps are useful because they make it easy to see what species is left after an acid donated a proton and what species is formed when a base accepted a proton. We shall use hypothetical steps or half-equations in this section, but you should bear in mind that free protons never actually exist in aqueous solution.

Suppose we first consider a weak acid, the ammonium ion. When it donates a proton to any other species, we can write the half-equation:

$\text{NH}_4^+ \rightarrow \text{H}^+ +\text{NH}_3$

The submicroscopic representations below show the donation of the proton of ammonium. The removal of this proton results in NH3, which is easily seen at the submicroscopic level.

But NH3 is one of the compounds we know as a weak base. In other words, when it donates a proton, the weak acid NH4+ is transformed into a weak base NH3. Another example, this time starting with a weak base, is provided by fluoride ion:

$\text{F}^{-} + \text{H}^{+} \rightarrow \text{HF}$

The submicroscopic representation above shows how the addition of a proton to fluoride converts a weak base (F- in green) into a weak acid (HF).

The situation just described for NH4+ and NHor for F and HF applies to all acids and bases. Whenever an acid donates a proton, the acid changes into a base, and whenever a base accepts a proton, an acid is formed. An acid and a base which differ only by the presence or absence of a proton are called a conjugate acid-base pair. Thus NH3 is called the conjugate base of NH4+, and NH4+ is the conjugate acid of NH3. Similarly, HF is the conjugate acid of F, and F the conjugate base of HF.

Example $$\PageIndex{1}$$ : Conjugate Pairs

What is the conjugate acid or the conjugate base of (a) HCl; (b) CH3NH2; (c) OH; (d) HCO3.

Solution:

1. HCl is a strong acid. When it donates a proton, a Cl ion is produced, and so Cl is the conjugate base.
2. CH3NH2 is an amine and therefore a weak base. Adding a proton gives CH3NH3+, its conjugate acid.
3. Adding a proton to the strong base OH gives H2O its conjugate acid.
4. Hydrogen carbonate ion, HCO3, is derived from a diprotic acid and is amphiprotic. Its conjugate acid is H2CO3, and its conjugate base is CO32–.

The use of conjugate acid-base pairs allows us to make a very simple statement about relative strengths of acids and bases. The stronger an acid, the weaker its conjugate base, and, conversely, the stronger a base, the weaker its conjugate acid.

TABLE $$\PageIndex{1}$$:Important Conjugate Acid-Base Pairs.

Table $$\PageIndex{1}$$ gives a list of some of the more important conjugate acid-base pairs in order of increasing strength of the base. This table enables us to see how readily a given acid will react with a given base. The reactions with most tendency to occur are between the strong acids in the top left-hand comer of the table and the strong bases in the bottom right-hand comer.

If a line is drawn from acid to base for such a reaction, it will have a downhill slope. By contrast, reactions with little or no tendency to occur (between the weak acids at the bottom left and the weak bases at the top right) correspond to a line from acid to base with an uphill slope. When the slope of the line is not far from horizontal, the conjugate pairs are not very different in strength, and the reaction goes only part way to completion. Thus, for example, if the acid HF is compared with the base CH3COO, we expect the reaction to go part way to completion since the line is barely downhill.

A strong acid like HCl donates its proton so readily that there is essentially no tendency for the conjugate base Cl to reaccept a proton. Consequently, Cl is a very weak base. A strong base like the H ion accepts a proton and holds it so firmly that there is no tendency for the conjugate acid H2 to donate a proton. Hence, H2 is a very weak acid.

Example $$\PageIndex{2}$$ : Balanced Equation

Write a balanced equation to describe the reaction which occurs when a solution of potassium hydrogen sulfate, KHSO4, is mixed with a solution of sodium bicarbonate, NaHCO3.

Solution

The Na+ ions and K+ ions have no acid-base properties and function purely as spectator ions. Therefore any reaction which occurs must be between the hydrogen sulfate ion, HSO4 and the hydrogen carbonate ion, HCO3. Both HSO4 and HCO3 are amphiprotic, and either could act as an acid or as a base. The reaction between them is thus either

$$\text{HCO}_3^- + \text{HSO}_4^- \rightarrow \text{CO}_3^{2-} + \text{H}_2\text{SO}_4$$

or      $$\text{HSO}_4^- + \text{HCO}_3^- \rightarrow \text{SO}_4^{2-} + \text{H}_2\text{CO}_3$$

Table $$\PageIndex{1}$$ tells us immediately that the second reaction is the correct one. A line drawn from HSO4 as an acid to HCO3 as a base is downhill. The first reaction cannot possibly occur to any extent since HCO3 is a very weak acid and HSO4 is a base whose strength is negligible

Example $$\PageIndex{3}$$ :  Reaction Prediction

What reactions will occur when an excess of acetic acid is added to a solution of potassium phosphate, K3PO4?

Solution

The line joining CH3COOH to PO43– in Table $$\PageIndex{1}$$ is downhill, and so the reaction

$$\text{CH}_3\text{COOH} + \text{PO}_4^{3-} \rightarrow \text{CH}_3\text{COO}^- \text{HPO}_4^{2-}$$

should occur. There is a further possibility because HPO42– is itself a base and might accept a second proton. The line from CH3COOH to HPO42– is also downhill, but just barely, and so the reaction

$$\text{CH}_3\text{COOH} + \text{HPO}_4^{2-} \rightarrow \text{CH}_3\text{COO}^- + \text{H}_2\text{PO}_4^-$$

can occur, but it does not go to completion. Hence double arrows are used. Although H2PO4 is a base and might be protonated to yield phosphoric acid, H3PO4, a line drawn from CH3COOH to H2PO4 is uphill, and so this does not happen.