The acid-dissociation constants of sulfurous acid (h2so3) are kal = 1.7 * 10-2 and ka2 = 6.4 * 10-8 at 25.0°c. calculate the ph of a 0.163 m aqueous solution of sulfurous acid.

Question

Chemistry

Janae Merritt

15 March, 11:53

The acid-dissociation constants of sulfurous acid (h2so3) are kal = 1.7 * 10-2 and ka2 = 6.4 * 10-8 at 25.0°c. calculate the ph of a 0.163 m aqueous solution of sulfurous acid.

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Connor Conway · Answer 1

Given:

acid-dissociation constants of sulfurous acid:

Ka1 = 1.7 * 10^ (-2)

Ka2 = 6.4 * 10^ (-8) at 25.0 °C.

aqueous solution of sulfurous acid = 0.163 M

x² / (0.163 - x) = 1.7 * 10^ (-2)

You simplify it to:

x² / (0.163) = 1.7 * 10^ (-2)

x = 0.052640 M

pH = 1.28

So, the pH of a 0.163 M aqueous solution of sulfurous acid is 1.28.

To add, aqueous solutions of sulfur dioxide purpose are as disinfectants and reductant, as are solutions of sulfite salts and bisulfite. By accepting another oxygen atom, they are oxidised to sulfuric acid or sulfate.