What is the oxidation state of S in $S_{2} O_{3}^{- 2}$ $S_2O_3^-2$ ?

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What is the oxidation state of S in $S_{2} O_{3}^{- 2}$ $S_2O_3^-2$ ?

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Answer 1 · 2018-04-16T17:48:11

$+ 2$ $+2$

Explanation:

We can see that the net charge of the molecule is $- 2$ $-2$ .
To start of we find the oxidation state of oxygen, in the molecule.
Oxygen has a oxidation state of $- 2$ $-2$ since we have 3 oxygens this would give a total oxidation state of $- 6$ $-6$ for oxygen. But since the net charge of the molecule is $- 2$ $-2$ we have to all 2 the the total charge of oxygen, thereby giving $- 4$ $-4$ . Now we can see that the sulfur must have a charge of $+ 2$ $+2$ .

Answer 2 · 2018-04-16T19:20:36

Formally we gots $V I + S$ $stackrel(VI+)S$ and $- I I S$ $stackrel(-II)S$ ...

Explanation:

And thus $S_{average oxidation state} = \frac{V I + (- I I)}{2} = + I I$ $S_"average oxidation state"=(VI+(-II))/2=+II$ .

$Thiosulfate ion$ $"Thiosulfate ion"$ is an interesting customer in terms of sulfur oxidation state. If we look at sulfate, $S O_{4}^{2 -}$ $SO_4^(2-)$ , CLEARLY we got $S^{V I +}$ $S^(VI+)$ and $4 \times O^{- I I}$ $4xxO^(-II)$ ..and as usual, the weighted sum of the oxidation numbers, $6 - 8 = - 2$ $6-8=-2$ , i.e. the charge on the ion.

In $thiosulfate$ $"thiosulfate"$ , $S_{2} O_{3}^{2 -}$ $S_2O_3^(2-)$ , I like to think that ONE of the oxygen atoms of sulfate has BEEN REPLACED by one sulfur as sulfide. And thus the central sulfur is $+ V I$ $+VI$ , and the terminal sulfur is $S^{- I I}$ $S^(-II)$ , i.e. its oxidation state is PRECISELY the same as its Group 16 congener, oxygen. Of course, this is a formalism, but so is the whole concept of oxidation state and oxidation number.

Claro?

Answer 3 · 2018-04-17T00:21:40

$+ 2$ $+2$

Explanation:

We got the thiosulfate ion $S_{2} O_{3}^{2 -}$ $S_2O_3^(2-)$ .

Since oxygen is more electronegative than sulfur, then oxygen will have its usual $- 2$ $-2$ oxidation state. There are three oxygen atoms, and so the total charge of the oxygens is $- 2 \cdot 3 = - 6$ $-2*3=-6$ .

Let $x$ $x$ be the total charge of two sulfur atoms.

We got:

$x - 6 = - 2$ $x-6=-2$

$x = - 2 + 6$ $x=-2+6$

$x = 4$ $x=4$

So, the sum of the oxidation numbers of the sulfur atoms is $+ 4$ $+4$ . If we consider both sulfur atoms to have the same oxidation number, then each sulfur will have an oxidation number of $\frac{+ 4}{2} = + 2$ $(+4)/2=+2$ .

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What is the oxidation state of S in $S_{2} O_{3}^{- 2}$ $S_2O_3^-2$ ?

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