15.6
A weak acid, like hydrocyanic acid, is a Brønsted acid as it donates a proton to the water molecule and produces the hydronium ion. A weak acid dissociates partially in water according to its acid dissociation constant, Ka, which is 4.9 × 10−10 for hydrocyanic acid.
For hydrocyanic acid, the Ka is equal to the concentration of hydronium times the concentration of cyanide ions divided by the concentration of hydrocyanic acid.
The acid dissociation constant, Ka, can be used to determine the hydronium ion concentration in a weak acid solution and consequently, the pH of the solution.
The concentration of hydronium ions and the pH of a 0.15 molar solution of hydrocyanic acid can be calculated using its equilibrium expression and an ICE table.
The concentrations of hydrocyanic acid, hydronium, and cyanide initially and at equilibrium can be expressed in a table that shows the Initial, Change, and Equilibrium concentrations of each of the molecules.
To reach equilibrium, the initial concentration of the reactants decreases as the initial concentration of the products increases according to their molar ratios. This change in the concentration of the reactants and products is denoted by x.
Few compounds act as strong acids. A far greater number of compounds behave as weak acids and only partially react with water, leaving a large majorit…
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