How does $thiosulfate ion$ $"thiosulfate ion"$ , $S_{2} O_{3}^{2 -}$ $S_2O_3^(2-)$ give rise to sulfur and sulfur dioxide upon disproportionation?

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How does $thiosulfate ion$ $"thiosulfate ion"$ , $S_{2} O_{3}^{2 -}$ $S_2O_3^(2-)$ give rise to sulfur and sulfur dioxide upon disproportionation?

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Answer 1 · 2017-06-04T12:54:05

This is a disproportionation reaction........

$S_{2} O_{3}^{2 -} + 2 H^{+} \to S + S O_{2} + H_{2} O$ $S_2O_3^(2-) +2H^(+) rarr S +SO_2+H_2O$

Explanation:

Thiosulfate, $S_{2} O_{3}^{2 -}$ $S_2O_3^(2-)$ has formal $- I I S$ $stackrel(-II)S$ and $+ V I S$ $stackrel(+VI)S$ oxidation states, i.e. an average oxidation state of $\frac{- I I + V I}{2} = + I I$ $(-II+VI)/2=+II$ .

It is reduced to $0 S$ $stackrel(0)S$ , i.e. zerovalent sulfur, and oxidized to ${+ I V SO}_{2}$ $stackrel(+IV)"SO"_2$ .

And thus reduction............:

$S_{2} O_{3}^{2 -} + 6 H^{+} + 4 e^{-} \to 2 S + 3 H_{2} O$ $S_2O_3^(2-) +6H^(+)+ 4e^(-) rarr 2S +3H_2O$ $(i)$ $(i)$

And oxidation............:

$S_{2} O_{3}^{2 -} + H_{2} O \to 2 S O_{2} + 2 H^{+} + 4 e^{-}$ $S_2O_3^(2-) +H_2O rarr 2SO_2 +2H^(+)+4e^(-)$ $(i i)$ $(ii)$

For both $(i)$ $(i)$ and $(i i)$ $(ii)$ , charge and mass are balanced as is absolutely required. Are they balanced? Don't trust my arithmetic.

We add $(i) + (i i)$ $(i) + (ii)$ to remove the electrons...........

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

And of course we could halve this, as per Nam D.'s suggestion..

$underbrace(S_2O_3^(2-) +2H^(+))_("sulfurous acid"*H_2SO_3) rarr S +H_2O +SO_2$

Again, if mass and charge ARE NOT BALANCED, then we CANNOT accept it as a representation of chemical reality. Looking at it again, we gots both LHS and RHS neutral, LHS and RHS, $2xxS$ , $3xxO$ , and $2xxH$ .........so balanced with respect to mass and charge.

What would you observe in this reaction? Well, probably (i) the precipitate of a fine white powder of elemental sulfur, and (ii) maybe the foul odour of $SO_2$ .

Just as a comment, I like to think of sulfurous acid as the SULFUR analogue of sulfuric acid, where ONE sulfur has replaced ONE oxygen to give $H_2S_2O_3$ . And this sulfur assumes THE SAME oxidation state as the oxygen it replaces, i.e. $S(-II)$ . And so we got $S(VI+)$ and $S(-II)$ ...the average oxidation state is still $S(+II)$ . And we compare this with $SO_4^(2-)$ , i.e. $S(VI+)+4xxO(-II)$ ...

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How does $thiosulfate ion$ $"thiosulfate ion"$ , $S_{2} O_{3}^{2 -}$ $S_2O_3^(2-)$ give rise to sulfur and sulfur dioxide upon disproportionation?

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How does "thiosulfate ion"thiosulfate ion"thiosulfate ion", S_2O_3^(2-)S2O2−3S_2O_3^(2-) give rise to sulfur and sulfur dioxide upon disproportionation?

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How does $thiosulfate ion$ $"thiosulfate ion"$ , $S_{2} O_{3}^{2 -}$ $S_2O_3^(2-)$ give rise to sulfur and sulfur dioxide upon disproportionation?