Why does thiosulfate oxidize to sulfate in an acidic medium?

Question

Why does thiosulfate oxidize to sulfate in an acidic medium?

1 Answer

Impact of this question

4510 views around the world

You can reuse this answer
Creative Commons License

Answer 1 · 2017-02-09T10:51:26

Presumably because oxidation to sulfate ( $S (V I +)$ $S(VI+)$ ) is the thermodynamic product under these conditions.

Explanation:

Sodium thiosulfate is known to undergo disproportionation in acidified aqueous solution:

$Oxidation:$ $"Oxidation:"$
$S_{2} O_{3}^{2 -} + H_{2} O (l) \to 2 S O_{2} (g) + 2 H^{+} + 4 e^{-}$ $S_2O_3^(2-) + H_2O(l) rarr 2SO_2(g)+2H^(+) + 4e^-$

$Reduction:$ $"Reduction:"$
$S_{2} O_{3}^{2 -} + 6 H^{+} + 4 e^{-} \to 2 S (s) ⏐ ⏐ ↓ + 3 H_{2} O$ $S_2O_3^(2-) +6H^(+) + 4e^(-)rarr 2S(s)darr+3H_2O$

$Overall:$ $"Overall:"$
$2 S_{2} O_{3}^{2 -} + 4 H^{+} \to 2 S O_{2} (g) + 2 S (s) + 2 H_{2} O$ $2S_2O_3^(2-) + 4H^(+) rarr 2SO_2(g) + 2S(s) + 2H_2O$

Now this is a balanced chemical equation, but the equation should conform to reality, not vice versa. Under these conditions, I presume, that oxidation to $sulfate ion$ $"sulfate ion"$ , would be the preferred outcome, i.e.

$Oxidation:$ $"Oxidation:"$
$S_{2} O_{3}^{2 -} + 5 H_{2} O (l) \to 2 S O_{4}^{2 -} + 10 H^{+} + 8 e^{-}$ $S_2O_3^(2-) + 5H_2O(l) rarr 2SO_4^(2-)+10H^(+) + 8e^-$

Note that I presume that sulphur dioxide $(S (I V +))$ $(S(IV+))$ is fully oxidized to $S (V I +)$ $S(VI+)$ under the given conditions.

$Overall:$ $"Overall:"$
$3 S_{2} O_{3}^{2 -} + 4 H^{+} \to 2 S O_{4}^{2 -} + 2 S (s) + 2 H_{2} O$ $3S_2O_3^(2-) + 4H^(+) rarr 2SO_4^(2-) + 2S(s) + 2H_2O$

So I would presume that the answer your question is that under these conditions oxidation of sulfur to sulfate is the thermodynamic outcome.

Science

Math

Humanities

... and beyond

Why does thiosulfate oxidize to sulfate in an acidic medium?

1 Answer

Explanation:

Related questions

Impact of this question